Cryogenic Measurements of Surface Mount Multi-layer Ceramic Chip Capacitors

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1 NATIONAL RAIO ASTRONOMY OBSERVATORY Green Bank, West Virginia ELECTRONICS IVISION TECHNICAL NOTE NO. 24 Cryogenic Measurements of Surface Mount Multi-layer Ceramic Chip Capacitors Roger. Norrod November 0, 2009 Rev. March 9, 200

2 NATIONAL RAIO ASTRONOMY OBSERVATORY POST OFFICE 2 GREEN BANK WV TELEPHONE FAX Cryogenic Measurements of Surface Mount Multi-layer Ceramic Chip Capacitors Roger. Norrod November 9, 2009 Introduction ETN 205 reported cryogenic measurements (4K) of several chip capacitors and resistors []. Most of the devices tested for that report were designed for use in wire-bonded assemblies, i.e. were single-layer or other vertically oriented packages. Other researchers have published capacitor cryogenic test results [2]. This document reports on cryogenic tests of other types of chip capacitors, namely inexpensive, commonly available surface mount units in industry standard packages. For array receivers where costs are a significant concern, it will be advantageous if devices from several manufacturers are available for use in circuit designs, and surface mount rather than wirebond assembly techniques can be used. All of the types were tested to 77K by dipping in liquid nitrogen and most to less than 20K using a closed-cycle refrigerator. The has defined several classes of dielectric for use in capacitors; a Class 2, X5R (X5R signifies the allowed capacitance change over temperature, ±5% over -55 to +85 C) sample was first tested and found to exhibit unacceptable capacitance change. The remaining samples tested were Class, C0G/NP0 types (0±30ppm/ C over -55 to 25 C). The units to test were selected by simply picking types available from stock from igikey [3] in both large and small quantities (cut-tape) and in a wide range of values in the 0402 case size. It was found that C0G/NP0 units from four manufacturers functioned quite well below 20K. The liquid nitrogen dip tests were found to be good indication of 20K performance because little or no change in capacitance was observed between 77K and 20K. 2 Test Setup and Procedure The capacitor types tested are listed in Table, along with the available capacitance range in the 0402 size for reference. The Murata GRM is available in a wider range of capacitance but the specified Q is rather low (Q 000 at MHz for C 30pF) and this type may not be appropriate for some microwave applications. The other three types are available in larger values in larger case sizes.

3 Table Capacitor Manufacturers and Range Type 0402 Range Available AVX U Series -30 pf Johanson S Series pf Murata GRM Series pf Panasonic EC Series 0.-5 pf To measure capacitance, a HP4275A LCR variable frequency meter set to MHz test frequency was used. The capacitor sample to be tested was mounted on a microstrip circuit in a test block, between a short 50Ω line and a pad with several ground vias. The 50Ω line connected to a coaxial K-connector. For the liquid nitrogen dip tests, a 4 inch length of 4 stainless cable connected to the HP4275A. For the refrigerated tests, a NRAO low-loss stainless airline connected to the test dewar wall, and then 30 inches of Belden 673A flexible coax to the HP4275A. In both cases, the HP4275A was zeroed with no capacitor mounted (the 50Ω microstrip line open-circuited). After a few hours of 4275A warm-up, little drift was seen but the zero process was done at least once each day. Testing was limited to measuring capacitance change; other capacitor characteristics were not evaluated. It should be noted the test setup capacitance readings are consistently 20-25% higher than expected from the capacitors marked values. The cause of this is currently unknown. 3 Results Table 2 contains the 77K liquid nitrogen dip test results. For each sample, a Styrofoam cup was filled with liquid nitrogen, and the test block connected to the stainless steel coax was plunged into the nitrogen and allowed to stabilize. The percent change is defined relative to the room temperature value. Table 2 Liquid Nitrogen ip Test Results I Type 300K Value 77K Value Panasonic ECJ-0EBA473K, 47,000pF, X5R 63700pF 3500pF Panasonic EC-G0E00C, 0pF, 25V, C0G, # Panasonic EC-G0E00C, 0pF, 25V, C0G, # AVX 0402U00JAT2A, 0pF, 50V, NP0, # AVX 0402U00JAT2A, 0pF, 50V, NP0, # Johanson 500R07S00GV4T, 0pF, 50V, C0G, # Johanson 500R07S00GV4T, 0pF, 50V, C0G, # Murata GRM555CH47JA0, 470pF, 50V, C0G % Change Tables 3-6 contain results for the closed-cycle refrigerator tests. The approximate 2 hour cool down time gave the opportunity to record capacitance at a few intermediate temperatures. The capacitance varied smoothly with no unusual changes noted. 2

4 Table 3 Refrigerated Test Results Type Panasonic EC-G0E00C Temperature (K) C (pf) %Change Time : : : :53 Table 4 Refrigerated Test Results Type Johanson 500R07S00GV4T Temperature (K) C (pf) %Change Time : : : : : :55 Table 5 Refrigerated Test Results Type AVX 04025U00JAT2A Temperature (K) C (pf) %Change Time : : : : :43 Table 6 Refrigerated Test Results Type Murata GRM555CH47JA0 Temperature (K) C (pf) %Change Time : : : : : : : : :0 3

5 4 Summary Multilayer ceramic chip capacitors with C0G/NP0 rated temperature coefficients from four manufacturers were tested at temperatures to less than 20K and found to function with less than a few percent change in value from room temperature. The capacitors tested are currently available at low cost in either large or small quantities and in a wide range of values, and are designed for surface mounting by hand or reflow soldering. All the units tested were in the 0402 (0.040 X inch footprint) package, although other size packages in the same series are available. Percentage wise, the Panasonic EC and Murata types change the least over the temperature range tested. The manufacturer s data sheets do not provide any information about the ceramic formulations in their capacitors, but the Murata type likely has significantly different dielectric constant than the others in order to achieve the larger values in the same 0402 envelope. The liquid nitrogen dip tests were found to be a good indication of 20K performance; little or no change in capacitance was observed between 77K and 5K. 5 Acknowledgement Thanks to Bob Simon for providing the microstrip test fixture and doing the assembly work. 6 References. A.R. Kerr and M. Lambeth, NRAO ETN 205, Cryogenic (4K) Measurements of Some Resistors and Capacitors, March 5, Joseph C. Bardin, Silicon-Germanium Heterojunction Bipolar Transistors For Extremely Low-Noise Applications, Ph Thesis, California Institute of Technology, Pasadena, CA, pp 54-55, May

6 7 Addendum March 9, 200 As noted in section 2, the capacitance readings obtained from the HP 4275A LCR meter were consistently about 20% higher than expected from labeled capacitor values. A GW LCR-84 portable meter has now been used to repeat some of the liquid nitrogen dip tests. One shortcoming of the GW meter is lower resolution than the HP, but it gives capacitance readings approximately equal to the capacitor labeled values. Results of dip tests of four samples are given in Table 7 - compare with Table 2. It appears the HP 4275A used has a scaling error, but the percent changes are consistent between the two meters. Therefore, the conclusions reached above are still valid. Table 7 Liquid Nitrogen ip Test with LCR-84 Meter I Type 300K Value 77K Value 2 Panasonic EC-G0E00C, 0pF, 25V, C0G AVX 0402U00JAT2A, 0pF, 50V, NP Johanson 500R07S00GV4T, 0pF, 50V, C0G Murata GRM555CH47JA0, 470pF, 50V, C0G % Change 5

7 APPENIX Capacitor ata Sheets 6

8 RF/Microwave C0G (NP0) Capacitors (RoHS) Ultra Low ESR, U Series, C0G (NP0) Chip Capacitors GENERAL INFORMATION U Series capacitors are C0G (NP0) chip capacitors spe - cially designed for Ultra low ESR for applications in the communications market. Max ESR and effective capacitance IMENSIONS: inches (millimeters) B A C B A E C B are met on each value producing lot to lot uniformity. Sizes available are chip sizes 0603, 0805, and 20. inches (mm) Size A B C E ±0.004 (.00±0.) 0.020±0.004 (0.50±0.) (0.6) max N/A N/A ±0.00 (.52±0.25) 0.030±0.00 (0.76±0.25) (0.9) max 0.00±0.005 (0.25±0.3) (0.76) min ±0.008 (2.0±0.2) 0.049±0.008 (.25±0.2) 0.040±0.005 (.02±0.27) 0.020±0.00 (0.5±0.255) (0.5) min ±0.008 (3.2±0.2) 0.098±0.008 (2.49±0.2) 0.050±0.005 (.27±0.27) 0.025±0.05 (0.635±0.38) (.02) min HOW TO ORER U 00 J A E C A T B A E 2 C A Case Size Voltage 3 = 25V 5 = 50V = 00V 2 = 200V ielectric = Ultra Low ESR ELECTRICAL CHARACTERISTICS B = ±0.pF C = ±0.25pF = ±0.5pF F = ±% G = ±2% J = ±5% K = ±0% M = ±20% Capacitance Capacitance in pf. First two digits = significant figures or R for decimal place. Third digit = number of zeros or after R significant figures. Capacitance Values and Tolerances: Size pf to 22 MHz Size pf to 00 MHz Size pf to 60 MHz Size pf to 000 MHz Temperature Coefficient of Capacitance (TC): 0±30 ppm/ C (-55 to +) Insulation Resistance (IR): 0 2 Ω and rated WVC 0 Ω and rated WVC Working Voltage (WVC): Size Working Voltage , 25 WVC , 00, 50 WVC , 00 WVC , 00 WVC 8 Capacitance Tolerance Failure Rate A = Not Applicable Termination T= Plated Ni and Sn Packaging 2 = 7" Reel 4 = 3" Reel 9 = Bulk Special A = Standard NOTE: Contact factory for availability of Termination and Tolerance Options for Specific Part Numbers. ielectric Working Voltage (WV): 250% of rated WVC Equivalent Series Resistance Typical (ESR): See Performance Curve, page See Performance Curve, page See Performance Curve, page See Performance Curve, page 9 Marking: Laser marking J marking standard (except 0603) (capacitance code and tolerance upon request). MILITARY SPECIFICATIONS Meets or exceeds the requirements of MIL-C-5568 RoHS COMPLIANT Pb: Free

9 RF/Microwave C0G (NP0) Capacitors (RoHS) Ultra Low ESR, U Series, C0G (NP0) Chip Capacitors CAPACITANCE RANGE Available Size Cap (pf) Tolerance B,C 50V N/A N/A N/A B,C 0.6 B,C, B,C, ULTRA LOW ESR, U SERIES Available Size Cap (pf) Tolerance B,C, 50V 200V 200V 200V B,C, 6.8 B,C,J,K,M Available Size Cap (pf) Tolerance B,C,J,K,M 50V 200V 200V 200V B,C,J,K,M 0 F,G,J,K,M V 20 00V V 33 N/A Available Size Cap (pf) Tolerance F,G,J,K,M N/A 00V 200V 200V 0 50V 20 50V 30 N/A 200V 40 00V V 80 N/A V V F,G,J,K,M TYPICAL ESR vs. FREQUENCY 0402 U SERIES TYPICAL ESR vs. FREQUENCY 0603 U SERIES ESR (ohms) 0. 0 pf 5 pf 3.3 pf ESR (ohms) pf 4.7 pf 5. pf 6.8 pf 0.0 pf 5.0 pf Frequency (MHz) Frequency (MHz) TYPICAL ESR vs. FREQUENCY 0805 U SERIES TYPICAL ESR vs. FREQUENCY 20 U SERIES ESR (ohms) pf 0.0 pf ESR (ohms) 0 pf 00 pf pf Frequency (MHz) Frequency (MHz) ESR Measured on the Boonton 34A RoHS COMPLIANT Pb: Free 9

10 RF/Microwave C0G (NP0) Capacitors Ultra Low ESR, U Series, C0G (NP0) Chip Capacitors 0 TYPICAL SERIES RESONANT FREQUENCY U SERIES CHIP Frequency (GHz) 0

11 RF/Microwave C0G (NP0) Capacitors (Sn/Pb) Ultra Low ESR, U Series, C0G (NP0) Chip Capacitors GENERAL INFORMATION U Series capacitors are C0G (NP0) chip capacitors specially designed for Ultra low ESR for applications in the communications market. Max ESR and effective capacitance are met on each value producing lot to lot uniformity. Sizes available are chip sizes 0603, 0805, and 20. IMENSIONS: inches (millimeters) B A C B A E C B inches (mm) Size A B C E ±0.004 (.00±0.) 0.020±0.004 (0.50±0.) (0.6) max N/A N/A ±0.00 (.52±0.25) 0.030±0.00 (0.76±0.25) (0.9) max 0.00±0.005 (0.25±0.3) (0.76) min ±0.008 (2.0±0.2) 0.049±0.008 (.25±0.2) 0.040±0.005 (.02±0.27) 0.020±0.00 (0.5±0.254) (0.5) min ±0.008 (3.2±0.2) 0.098±0.008 (2.49±0.2) 0.050±0.005 (.27±0.27) 0.025±0.05 (0.635±0.38) (.02) min L HOW TO ORER U 00 J A E C A B B A E 2 C A Case Size L02 = 0402 L03 = 0603 L05 = 0805 L0 = 20 Voltage 3 = 25V 5 = 50V = 00V 2 = 200V ielectric = Ultra Low ESR Capacitance Tolerance B = ±0.pF C = ±0.25pF = ±0.5pF F = ±% G = ±2% J = ±5% K = ±0% M = ±20% Capacitance Capacitance in pf. First two digits = significant figures or R for decimal place. Third digit = number of zeros or after R significant figures. Failure Rate A = Not Applicable Termination B = 5% min lead Packaging 2 = 7" Reel 4 = 3" Reel 9 = Bulk Special A = Standard ELECTRICAL CHARACTERISTICS Capacitance Values and Tolerances: Size pf to 22 MHz Size pf to 00 MHz Size pf to 60 MHz Size pf to 000 MHz Temperature Coefficient of Capacitance (TC): 0±30 ppm/ C (-55 to +) Insulation Resistance (IR): 0 2 Ω and rated WVC 0 Ω and rated WVC Working Voltage (WVC): Size Working Voltage , 25 WVC , 00, 50 WVC , 00 WVC , 00 WVC ielectric Working Voltage (WV): 250% of rated WVC Equivalent Series Resistance Typical (ESR): See Performance Curve, page See Performance Curve, page See Performance Curve, page See Performance Curve, page 2 Marking: Laser marking J marking standard (except 0603) (capacitance code and tolerance upon request). MILITARY SPECIFICATIONS Meets or exceeds the requirements of MIL-C-5568

12 RF/Microwave C0G (NP0) Capacitors (Sn/Pb) Ultra Low ESR, U Series, C0G (NP0) Chip Capacitors CAPACITANCE RANGE Available Size Cap (pf) Tolerance L02 L03 L05 L0 0.2 B,C 50V N/A N/A N/A B,C 0.6 B,C, B,C, Available Size Cap (pf) Tolerance L02 L03 L05 L0.0 B,C, 50V 200V 200V 200V B,C, 6.8 B,C,J,K,M Available Size Cap (pf) Tolerance L02 L03 L05 L0 7.5 B,C,J,K,M 50V 200V 200V 200V B,C,J,K,M 0 F,G,J,K,M V 20 00V V 33 N/A Available Size Cap (pf) Tolerance L02 L03 L05 L0 00 F,G,J,K,M N/A 00V 200V 200V 0 50V 20 50V 30 N/A 200V 40 00V V 80 N/A V V F,G,J,K,M ULTRA LOW ESR, U SERIES TYPICAL ESR vs. FREQUENCY 0402 U SERIES TYPICAL ESR vs. FREQUENCY 0603 U SERIES ESR (ohms) 0. 0 pf 5 pf 3.3 pf ESR (ohms) pf 4.7 pf 5. pf 6.8 pf 0.0 pf 5.0 pf Frequency (MHz) Frequency (MHz) TYPICAL ESR vs. FREQUENCY 0805 U SERIES TYPICAL ESR vs. FREQUENCY 20 U SERIES ESR (ohms) pf 0.0 pf ESR (ohms) 0 pf 00 pf pf Frequency (MHz) Frequency (MHz) ESR Measured on the Boonton 34A 2

13 esigner Kits Communication Kits U Series U SERIES KITS ***25 each of 5 values Kit 5000 UZ Kit 4000 UZ Cap. Cap. Value Tolerance Value Tolerance pf pf B (±0.pF) B (±0.pF) J (±5%) Cap. Cap. Value Tolerance Value Tolerance pf pf B (±0.pF) B (±0.pF) J (±5%) ***25 each of 24 values 0805 Kit 3000 UZ Cap. Cap. Value Tolerance Value Tolerance pf pf B (±0.pF) J (±5%) J (±5%) 60.0 ***25 each of 30 values 20 Kit 3500 UZ Cap. Cap. Value Tolerance Value Tolerance pf pf B (±0.pF) J (±5%) J (±5%) ***25 each of 30 values 3

14 Mu lt i-lay e r High-Q Capacitors These lines of multilayer capacitors have been developed for High-Q and microwave applications. The S-Series (R03S, R07S, R4S, R5S) capacitors give an ultra-high Q performance, and exhibit NP0 temperature characteristics. The L-Series (R05L) capacitors give mid-high Q performance, and exhibit NP0 temperature characteristics. The E-Series (S42E, S48E, S58E) capacitors give excellent high-q performance from HF to Microwave frequencies. Typical uses are high voltage, high current applications. They are offered in chip (Ni barrier or Non-Magnetic Pt.-Ag) or in Non-Magnetic leaded form. The W-Series (R05W) capacitors offer a large capacitance value in an ultra-small 020 package size. These exhibit a X7R temperature characteristic. RoHS compliance is standard for all unleaded parts (see termination options box). How to Order 252 S48 E 470 K Y 4 E VOLTAGE (C) 6R3 = 6.3 V 60 = 6 V 250 = 25 V 500 = 50 V 25 = 250 V 50 = 500 V 02 = 000 V 52 = 500 V 202 = 2000 V 252 = 2500 V 362 = 3600 V 502 = 5000 V 722 = 7200 V CASE SIZE R03 (0005) R05 (020) R07 (0402) R4 (0603) R5 (0805) S42 () S48 (2525) S58 (3838) CAPACITANCE (pf) st two digits are significant; third digit denotes number of zeros, R = decimal. 00 = 0 pf 0 = 00 pf IELECTRIC S = Ultra High Q NPO L = High Q NPO E = Ultra High Q NPO, High Voltage, High Power, W= X7R TOLERANCE A = ± 0.05 pf B = ± 0.0 pf C = ± 0.25 pf = ± 0.50 pf F = ± % G = ±2% J = ±5% K = ± 0% For tolerance availability, see chart. TERMINATION Nickel Barrier Types G = Ni/Au T = Ni/Sn-Pb V = Ni / 00% Sn Non Magnetic Types *C = Non-Leaded Cu * = Microstrip Ribbon Leads (E-Series Only) *2 = Axial Ribbon Part Number written: 252S48E470KY4E MARKING 3 = Cap & Tolerance 4 = No Marking 6 = (Marking on 0805 and larger only) PACKAGING S = Bulk W = Waffle Pack Y = Paper 5 Reel T = Paper 7 Reel *R = Paper 3 Reel Z = Embossed 5 Reel E = Embossed 7 Reel *U = Embossed 3 Reel Tape specifications conform to RS48 * - Not available for all MLCC - Call factory for info. 7

15 Low ESR / High-Q Capacitor Selection Chart Cap. Value Size Miniature Size - Portable Electronics 0005 (R03S) 020 (R05) 0402 NPO (R05L) X7R* (R05W) (R07S) 0603 (R4S) 0805 (R5S) RF Power Applications (S42E) 2525** (S48E) 3838** (S58E) Capacitance pf Voltage 0. 0R 0.2 0R2 6 V 25 V 50 V 250 V 500V 000V 0.3 0R3 6 V 25 V 50 V 250 V 250 V 500V 000V 0.4 0R4 6 V 25 V 50 V 250 V 250 V 500V 000V 0.5 0R5 6 V 25 V 50 V 250 V 250 V 500V 000V 0.6 0R6 6 V 25 V 50 V 250 V 250 V 500V 000V 0.7 0R7 6 V 25 V 50 V 250 V 250 V 500V 000V 0.8 0R8 6 V 25 V 50 V 250 V 250 V 500V 000V 0.9 0R9 6 V 25 V 50 V 250 V 250 V 500V 000V.0 R0 6 V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V. R 6 V 25 V 50 V 250 V 250 V 500V 000V.2 R2 A 6 V 25 V 50 V 250 V 250 V 500V 000V.3 R3 6 V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V.4 R4 6 V 25 V 50 V 250 V 250 V 500V 000V.5 R5 B 6 V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V.6 R6 6 V 25 V 50 V 250 V 250 V 500V 000V.7 R7 C 6 V 25 V 50 V 250 V 250 V 500V 000V.8 R8 6 V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V.9 R9 6 V 25 V 50 V 250 V 250 V 500V 000V 2.0 2R0 6 V 25 V 50 V 250 V 250 V 500V 000V 2. 2R 6 V 25 V 50 V 250 V 250 V 500V 000V 2.2 2R2 6 V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V 2.4 2R4 6 V 25 V 50 V 250 V 250 V 500V 000V 2.7 2R7 6 V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V 3.0 3R0 6 V 25 V 50 V 250 V 250 V 500V 000V 3.3 3R3 6 V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V 3.6 3R6 6 V 25 V 50 V 250 V 250 V 500V 000V 3.9 3R9 6 V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V 4.3 4R3 6 V 25 V 50 V 250 V 250 V 500V 000V 4.7 4R7 6 V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V 5. 5R 6 V 25 V 50 V 250 V 250 V 500V 000V 5.6 5R6 B 6 V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V 6.2 6R2 6 V 25 V 50 V 250 V 250 V 500V 000V 6.8 6R8 C 6 V 25 V 50 V 250 V 250 V 500V 000V 7.5 7R5 6 V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V 8.2 8R2 6 V 25 V 50 V 250 V 250 V 500V 000V 9. 9R 6 V 25 V 50 V 250 V 250 V 500V 000V V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V 0 6 V 25 V 50 V 250 V 250 V V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V 3 30 F 6 V 25 V 50 V 250 V 250 V 500V 000V V 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V 6 60 G 6 V 25 V 50 V 250 V 250 V 500V 000V V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V V 50 V 250 V 250 V 500V 000V J V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V V 50 V 250 V 250 V 500V 000V K 25 V 50 V 250 V 250 V 500V 000V 2500V 3600V 7200V V 25 V 250 V 250 V 500V 000V V 25 V 250 V 250 V 500V 000V 2500V 3600V 7200V * The R05W parts, which are X7R, can only be provided with K tolerance. Consult factory for Non-Standard values. 8

16 Low ESR / High-Q Capacitor Selection Chart Cap. Value Size Miniature Size - Portable Electronics 0005 (R03S) 020 (R05) 0402 NPO (R05L) X7R* (R05W) (R07S) 0603 (R4S) 0805 (R5S) RF Power Applications (S42E) 2525** (S48E) 3838** (S58E) Capacitance Tolerance pf Voltage V 250 V 250 V 500V 000V V 250 V 250 V 500V 000V 2500V 3600V 7200V V 250 V 250 V 500V 000V V 250 V 250 V 500V 000V 2500V 3600V 7200V V 250 V 250 V 500V 000V V 250 V 250 V 500V 000V 2500V 3600V 7200V V 250 V 250 V 500V 000V V 250 V 250 V 500V 000V 2500V 3600V 7200V V 250 V 250 V 500V 000V F 25 V 250 V 250 V 500V 000V V 250 V 250 V 500V 000V 2500V 3600V 7200V V 250 V 250 V 500V 000V 2500V 3600V 7200V 0 G 6 V 250 V 300V V 300V 2500V 3600V 5000V 30 3 J 250 V 300V V 300V 2500V 3600V 5000V 60 6 K 250 V 300V V 300V 2500V 3600V 5000V V 300V V 250 V 200V 2500V 3600V V V 2500V 3600V V V 500V 3600V V V 500V 3600V V V 200V 500V 2500V V V 000V 2500V V V 50V 000V 2500V V V 50V 000V 000V G V V 50V 000V 000V J 000V 000V V 000V K 500V 000V V 300V 000V V 500V V V V 500V V V * The R05W parts, which are X7R, can only be provided with K tolerance. Consult factory for Non-Standard values. 9

17 ielectric Characteristics NPO X7R Temperature Coefficient: QUALITY FACTOR / F: Insulation Resistance: ielectric Strength: Test Parameters: Available Capacitance: 0 ± 30ppm / C, -55 to Q MHz, Typical 0,000 >0 IR is 0% of rating 2.5 X WVC Min.,, 50 ma max MHz ±50kHz,.0±0.2 VRMS, Size 0005: pf Size 020: pf Size 0402: pf Size 0603: pf Size 0805: pf Size : pf Size 2525: pf Size 3838: pf ± 5%, -55 to 6VC F KHz, 0VC F KHz, >500 ΩF* or 0 IR is 0% of rating * whichever is less 2.5 X WVC Min.,, 50 ma max KHz ±50Hz,.0±0.2 VRMS, 00-0,000 pf Mechanical & Environmental Characteristics Specification TEST PARAMETERS Solderability: Solder coverage 90% of metalized areas Preheat chip to C for 60 sec., dip terminals in rosin flux No termination degradation then dip in Sn ±5 C for 5± sec Resistance to No mechanical damage Preheat device to C for 60 sec. SolderING Heat: Capacitance change: ±2.5% or 0.25pF followed by C for 60 sec. Q>500 I.R. >0 G Ohms ip in 260 ±5 C solder for 0± sec. Breakdown voltage: 2.5 x WVC Measure after 24±2 hour cooling period Terminal Termination should not pull off. Linear pull force* exerted on axial leads soldered to each terminal. AHESION: Ceramic should remain undamaged. * lbs, lbs (min.) PCB EFLECTION: No mechanical damage. Glass epoxy PCB: 0.5 mm deflection Capacitance change: 2% or 0.5pF Max LIFE TEST: No mechanical damage Applied voltage: 200% rated voltage, 50 ma max. Capacitance change: ±3.0% or 0.3 pf Temperature: 25 ±3 C Q>500 I.R. > G Ohms Test time: hours Breakdown voltage: 2.5 x WVC THERMAL CYCLE: No mechanical damage. 5 cycles of: 30± /-3 C, Capacitance change: ±2.5% or 0.25pF ± /-0 C, Q>2000 I.R. >0 G Ohms 2-3 Breakdown voltage: 2.5 x WVC Measure after 24±2 hour cooling period HUMIITY, No mechanical damage. Relative humidity: 90-95% STEAY STATE: Capacitance change: ±5.0% or 0.50pF max. Temperature: 40 ±2 C Q>300 I.R. G-Ohm Test time: /-0 Hours Breakdown voltage: 2.5 x WVC Measure after 24±2 hour cooling period HUMIITY, No mechanical damage. Applied voltage:.5 VC, 50 ma max. LOW VOLTAGE: Capacitance change: ±5.0% or 0.50pF max. Relative humidity: 85±2% Temperature: 40 ±2 C Q>300 I.R. = G-Ohm min. Test time: /-0 Hours Breakdown voltage: 2.5 x WVC Measure after 24±2 hour cooling period VIBRATION: No mechanical damage. Capacitance change: ±2.5% or 0.25pF Cycle performed for 2 hours in each of three perpendicular directions Q>000 I.R. 0 G-Ohm Frequency range 0Hz to 55 Hz to 0 Hz traversed Breakdown voltage: 2.5 x WVC in minute. Harmonic motion amplitude:.5mm 0

18 Mechanical Characteristics Size Units Length Width Thickness End Band 0005 In.06 ± ± ± Max. (0402) mm (0.40 ±0.03) (0.20 ±0.03) (0.20 ±0.03) (0.5 Max.) 020 In.024 ± ± ± Max. (0603) mm (0.60 ±0.03) (0.30 ±0.03) (0.30 ±0.03) (0.20 Max.) 0402 In.040 ± ± ± ±.006 (005) mm (.02 ±0.) (0.5 ±0.) (0.5 ±0.) (0.25 ±.5) 0603 In.062 ± ± / ±.006 (608) mm (.57 ±0.5) (0.8 ±0.5) ( ) (0.35 ±.5) 0805 In.080 ± ± ± ±.00 (202) mm (2.03 ±0.20) (.27 ±0.20) (.02 ±.5) (0.50 ±.25) E-Series Lead Style Selection Unleaded Terminations Y (Pt.-Ag), V (Ni / 00% Sn), or T (Ni / SnPb) Microstrip Ribbon Leads (Non-Magnetic), Termination e Axial Ribbon Leads (Non-Magnetic), Termination 2 e W T T L E/B X W X W T LL L LL LL L LL Lead Size Units L Tol W Tol T E / B In / Max Typ. S42E mm / Max Typ. Y, V, In / Max Typ. S48E T mm / Max Typ. In / Max Typ. S58E mm / Max Typ. For all E-Series Models: Operating Temp. : -55 to + Insulation Resistance: >000 ΩF or >0 GΩ, whichever is WVC Temperature Coefficient: 0 ± 30ppm / C, -55 to issipation Factor (Typ.): < MHz Lead Size Units L Tol W Tol T (max) E/B (typ) LL(min) X Tol e Tol In / / / / S42E mm / / / / In / / / / S48E mm / / / / In / / MAX / / S58E mm / / MAX / /- 0.3 In / / / / S42E mm / / / / In / / / / S48E mm / / / / In / / MAX / / S58E mm / / MAX / /

19 Series Resonance Chart 25.0 Typical Series Resonant Frequency (Series Mounted) 0.0 Frequency (GHz).0 R05/020 R07/0402 R4/0603 R5/ RF Characteristics - L-Series ESR vs Frequency: 020/R05L Q vs Frequency: 020/R05L ESR (Ohms) pf.2 pf 3.3 pf 5.6 pf 8.2 pf 22 pf Q pf.2 pf 3.3 pf 8.2 pf 5.6 pf 22 pf Frequency (MHz) Frequency (MHz) ESR vs Capacitance: 020/R05L Q vs Capacitance: 020/R05L ESR (Ohms) MHz MHz MHz MHz Q MHz MHz MHz MHz

20 S-Series RF Characterisitcs versus Frequency Equivalent Series Resistance: 0402/R07S Q Factor: 0402/R07S 0000 ESR (Ohms) pf 4.7 pf 0 pf.2 pf 8.2 pf 5 pf Frequency (MHz) Q pf 4.7 pf.2 pf 8.2 pf 0 pf 5 pf Frequency (MHz) Equivalent Series Resistance: 0603/R4S Q Factor: 0603/R4S 0000 ESR (Ohms) pf 0 pf 5 pf 33 pf 47 pf H Q pf 0 pf 5 pf 33 pf 47 pf Frequency (MHz) Frequency (MHz) Equivalent Series Resistance: 0805/R5S 4.7 pf 5 pf 47 pf 00 pf 220pF 0000 Q Factor: 0805/R5S 4.7pF 5pF 47pF 00pF 220pF 000 ESR (Ohms) 0. Q Frequency (Mhz) Frequency (MHz) Measurements performed on a Boonton 34A Resonant Coaxial Line and represent typical capacitor performance. 3

21 S-Series RF Characterisitcs versus Capacitance Equivalent Series Resistance: 0402/R07S Q Factor: 0402/R07S 0000 ESR (Ohms) MHz MHz MHz MHz Q MHz MHz MHz MHz Equivalent Series Resistance: 0603/R4S Q Factor: 0603/R4S MHz MHz MHz MHz 000 ESR (Ohms) 0. Q MHz MHz MHz MHz 0 50 Equivalent Series Resistance: 0805/R5S Q Factor: 0805/R5S MHz MHz MHz MHz MHz MHz MHz MHz 000 ESR (Ohms) 0. ESR (Ohms) Measurements performed on a Boonton 34A Resonant Coaxial Line and represent typical capacitor performance. 4

22 JTI S42E Graphical ata 0 SRF (Shunt Mount), S42E, Typical JTI S42E SRF Current Rating vs. Capacitance, S42E, Typical (Preliminary) 00 Frequency (GHz) Current Rating (amps) 0 30 MHz 64 MHz 28 MHz As measured on a 8720C VNA, using a Shunt-Through fixture, and using the S magnitude dip to determine the SRF Solid traces show voltage limited current (Vrms) otted traces show power dissipation limited current (Based on 3 Watts Power issipation, and 25 degrees C case temp.) S42E Q vs. Capacitance, Typical 0.00 S42E ESR vs. Capacitance, Typical 0000 Q 000 ESR (ohms) 00 Q vs 64 MHz Q vs 28 MHz ESR vs. 64 MHz ESR vs. 28 MHz As measured on a 4287A LCR meter, using a 6092A fixture As measured on a 4287A LCR meter, using a 6092A fixture 5

23 JTI S48E Graphical ata 0 SRF (Shunt Mount), S48E, Typical (Preliminary) JTI S48E SRF Current Rating vs. Capacitance, S48E, Typical (Preliminary) 00 Frequency (GHz) Current Rating (amps) 0 30 MHz 64 MHz 28 MHz As measured on a 8720C VNA, using a Shunt- Through fixture, and using the S magnitude dip to determine the SRF Solid traces show voltage limited current (Vrms) otted traces show power dissipation limited current (Based on 4 Watts Power issipation, and 25 degrees C case temp.) S48E Q vs. Capacitance, Typical (Preliminary) 0.00 S48E ESR vs. Capacitance, Typical (Preliminary) 0000 Q 000 ESR (ohms) 00 0 Q vs 64 MHz Q vs 28 MHz ESR vs. 64 MHz ESR vs. 28 MHz As measured on a 4287A LCR meter, using a 6092A fixture As measured on a 4287A LCR meter, using a 6092A fixture 6

24 ata Sheet Monolithic Ceramic Capacitors Capacitors > Monolithic Ceramic Capacitors GCM555CH47JA6p (0402, C0G, 470pF, 50Vdc) p: packaging code RoHS regulation conformity parts e g e T L W imensions Length L Width W Thickness T Electrode e Electrode Gap g (min.).0mm±0.05mm 0.5mm±0.05mm 0.5mm±0.05mm 0.5 to 0.35mm 0.3mm (in mm) Packaging Packaging Minimum Quantity 80mm Paper Tape 0000 J 330mm Paper Tape C Bulk Case B Bulk(Bag) 000 Rated Value Murata PN Spec Tenperature Char. 5C C0G (), 0±30ppm/ C Capacitance pF Capacitance Change J ±5% Rated Voltage H 50Vdc Specifications Please refer to 'GCM Series Specification and Test Methods' PF file. GCM Series meets AEC-Q200 requirements. o This data sheet is applied for CHIP MONOLITHIC CERAMIC CAPACITOR used for Automotive (For Power-train, Safety equipments) Electronics equipment for your design. <Notice> o Solderability of Tin plating termination chip might be deteriorated when low temperature soldering profile where peak solder temperature is below the Tin melting point is used. Please confirm the solderability of Tin plating termination chip before use. The RoHS compliance means that we judge from EU irective 2002/95/EC the products do not contain lead, cadmium, mercury, hexavalent chromium, PBB and PBE, except exemptions stated in EU irective 2002/95/EC annex and impurities existing in natural world. This statement does not insure the compliance of any of the listed parts with any laws or legal imperatives developed by any EU members individually with regards to the RoHS irective.! Note:. This datasheet is downloaded from the website of Murata Manufacturing co., ltd. Therefore, it s specifications are subject to change or our products in it may be discontinued without advance notice. Please check with our sales representatives or product engineers before ordering. 2. This datasheet has only typical specifications because there is no space for detailed specifications. Therefore, please approve our product specifications or transact the approval sheet for product specifications before ordering

25 o Part Numbering Chip Monolithic Ceramic Capacitors (Part Number) GC q M w 8 e 8 r R7 t H y 02 u K i A37 o!0 qproduct I wseries Product I Series J Soft Termination Type Power-train, Safety Equipment GC M Power-train, Safety Equipment eimension (LgW) imension (LgW) g0.3mm g0.5mm g0.8mm g.25mm g.6mm g2.5mm g3.2mm g5.0mm 2220 rimension (T) A B C E M N Q R X imension (T) 0.3mm 0.5mm 0.6mm 0.8mm 0.85mm.0mm.25mm.6mm 2.0mm 2.5mm.5mm.35mm.5mm.8mm epends on individual standards. ttemperature Characteristics Temperature Characteristic s Public ST Reference Temperature Temperature Characteristics Temperature Range Capacitance Change or Temperature Coefficient Operating Temperature Range 5C C0G 25 to 0±30ppm/ C -55 to 7U U2J 25 to -750±20ppm/ C -55 to C7 X7S -55 to ±22% -55 to R7 X7R -55 to ±5% -55 to ocapacitance Change from each temperature Capacitance Change from (%) Murata 55 C 30 C 0 C Max. Min. Max. Min. Max. Min. 5C U yrated Voltage 0J A C E YA H 2A 2E 2J Rated Voltage C6.3V C0V C6V C25V C35V C50V C00V C250V C630V ucapacitance Expressed by three-digit alphanumerics. The unit is pico-farad (pf). The first and second figures are significant digits, and the third figure expresses the number of zeros which follow the two numbers. If there is a decimal point, it is expressed by the capital letter "R". In this case, all figures are significant digits. Ex.) R50 R Capacitance 0.5pF.0pF 0pF 0000pF Continued on the following page.

26 Continued from the preceding page. icapacitance Tolerance Capacitance Tolerance TC Series Capacitance Step C J K M ±0.25pF ±0.5pF ±5% ±0% ±20% C0G C0G C0G U2J X7S, X7R X7S, X7R GCM GCM GCM GCM GCJ/GCM GCM V5pF E2, pf Step * 6.0 to 9.0pF E2, pf Step * U0pF E2 Step E6 Step E6 Step E6 Step * E24 series is also available. oindividual Specification Expressed by three figures.!0packaging L K J B C Packaging ø80mm Embossed Taping ø80mm Paper Taping ø330mm Embossed Taping ø330mm Paper Taping Bulk Bulk Case

27 ata Sheet Monolithic Ceramic Capacitors Capacitors > Monolithic Ceramic Capacitors GRM555CH47JA0p (0402, C0G, 470pF, 50Vdc) p: packaging code RoHS regulation conformity parts e g e T L W imensions Length L Width W Thickness T Electrode e Electrode Gap g (min.).0mm±0.05mm 0.5mm±0.05mm 0.5mm±0.05mm 0.5 to 0.35mm 0.3mm (in mm) Packaging Packaging Minimum Quantity 80mm Paper Tape 0000 J 330mm Paper Tape C Bulk Case B Bulk(Bag) 000 Rated Value Murata PN Spec Tenperature Char. 5C C0G (), 0±30ppm/ C Capacitance pF Capacitance Change J ±5% Rated Voltage H 50Vdc Specifications Please refer to 'GRM Series Specification and Test Methods ()' PF file. o This data sheet is applied for CHIP MONOLITHIC CERAMIC CAPACITOR used for General Electronics equipment for your design. <Notice> o Solderability of Tin plating termination chip might be deteriorated when low temperature soldering profile where peak solder temperature is below the Tin melting point is used. Please confirm the solderability of Tin plating termination chip before use. o Use of Sn-Zn based solder will deteriorate reliability of MLCC. Please check with our sales represetatives for the use of Sn-Zn based solder in advance. The RoHS compliance means that we judge from EU irective 2002/95/EC the products do not contain lead, cadmium, mercury, hexavalent chromium, PBB and PBE, except exemptions stated in EU irective 2002/95/EC annex and impurities existing in natural world. This statement does not insure the compliance of any of the listed parts with any laws or legal imperatives developed by any EU members individually with regards to the RoHS irective.! Note:. This datasheet is downloaded from the website of Murata Manufacturing co., ltd. Therefore, it s specifications are subject to change or our products in it may be discontinued without advance notice. Please check with our sales representatives or product engineers before ordering. 2. This datasheet has only typical specifications because there is no space for detailed specifications. Therefore, please approve our product specifications or transact the approval sheet for product specifications before ordering

28 o Part Numbering Chip Monolithic Ceramic Capacitors (Part Number) GR q M w 8 e 8 r B t H y 02 u K i A0 o!0 qproduct I wseries Product I Series GR ER GQ GM GN LL GJ GA eimension (LgW) M 5 8 M J M 4 7 B M A M L A M M 2 3 imension (LgW) 0.4g0.2mm 0.6g0.3mm 0.5g0.5mm 0.8g0.8mm 0.38g0.38mm 0.9g0.6mm.25g.0mm.0g0.5mm.6g0.8mm.37g.0mm 2.0g.25mm 2.8g2.8mm 3.2g.6mm 3.2g2.5mm 4.5g2.0mm 4.5g3.2mm 5.7g2.8mm 5.7g5.0mm Soft Termination Type Tin Plated Layer Only for Information evices / Tip & Ring Only for Camera Flash Circuit High Frequency Type High Frequency for Flow/Reflow Soldering Monolithic Microchip for Bonding Capacitor Array Low ESL Wide Width Type Eight-termination Low ESL Type Ten-termination Low ESL Type High Frequency Low Loss Type for AC250V (r.m.s.) Safety Standard Recognized Type rimension (T) A B C E F M N Q R S X imension (T) 0.2mm 2-elements (Array Type) 0.3mm 4-elements (Array Type) 0.5mm 0.6mm 0.7mm 0.8mm 0.85mm.0mm.25mm.6mm 2.0mm 2.5mm 3.2mm.5mm.35mm.5mm.8mm 2.8mm epends on individual standards. With the array type GNM series, "imension(t)" indicates the number of elements. Continued on the following page.

29 Continued from the preceding page. ttemperature Characteristics Temperature Characteristic s X 2C 2P 2R 2S 2T 3C 3P 3R 3S 3T 3U 4C 5C 5G 6C 6P 6R 6S 6T 7U B B3 C7 C8 7 8 E7 F F5 L8 R R3 R6 R7 R9 W0 Public ST SL * CH * PH * RH * SH * TH * CJ * PJ * RJ * SJ * TJ * UJ * CK * C0G * X8G * C0H * P2H * R2H * S2H * T2H * U2J * B *2 B X7S X6S X7T X6T X7U F *2 Y5V X8L R *2 R X5R X7R X8R - JIS JIS JIS JIS JIS JIS JIS JIS JIS JIS JIS JIS JIS JIS JIS JIS *3 JIS JIS - Reference Temperature 20 C 20 C 20 C 20 C 20 C 20 C 20 C 20 C 20 C 20 C 20 C 20 C 20 C 20 C 20 C 20 C 20 C 20 C Temperature Characteristics Temperature Capacitance Change or Range Temperature Coefficient 20 to 85 C +350 to -000ppm/ C 20 to 0±60ppm/ C 20 to 85 C -50±60ppm/ C 20 to 85 C -220±60ppm/ C 20 to 85 C -330±60ppm/ C 20 to 85 C -470±60ppm/ C 20 to 0±20ppm/ C 20 to 85 C -50±20ppm/ C 20 to 85 C -220±20ppm/ C 20 to 85 C -330±20ppm/ C 20 to 85 C -470±20ppm/ C 20 to 85 C -750±20ppm/ C 20 to 0±250ppm/ C 25 to 0±30ppm/ C 25 to 50 C 0±30ppm/ C 25 to 0±60ppm/ C 25 to 85 C -50±60ppm/ C 25 to 85 C -220±60ppm/ C 25 to 85 C -330±60ppm/ C 25 to 85 C -470±60ppm/ C 25 to *6-750±20ppm/ C -25 to 85 C ±0% -25 to 85 C ±0% -55 to ±22% -55 to 05 C ±22% -55 to +22, -33% -55 to 05 C +22, -33% -55 to +22, -56% -25 to 85 C -30 to 85 C -55 to 50 C -55 to -55 to -55 to 85 C -55 to -55 to 50 C -55 to * Please refer to table for Capacitance Change under reference temperature. *2 Capacitance change is specified with 50% rated voltage applied. *3 Murata Temperature Characteristic. *4 Apply C350V bias. *5 No C bias. *6 Rated Voltage 00Vdc max : 25 to 85 C +30, -80% +22, -82% +5, -40% ±5% ±5% ±5% ±5% ±5% ±0% *4 +22, -33% *5 Operating Temperature Range -55 to -55 to -25 to 85 C -25 to 85 C -25 to 85 C -25 to 85 C -55 to -25 to 85 C -25 to 85 C -25 to 85 C -25 to 85 C -25 to 85 C -55 to -55 to -55 to 50 C -55 to -55 to -55 to -55 to -55 to -55 to -25 to 85 C -25 to 85 C -55 to -55 to 05 C -55 to -55 to 05 C -55 to -25 to 85 C -30 to 85 C -55 to 50 C -55 to -55 to -55 to 85 C -55 to -55 to 50 C -55 to Continued on the following page.

30 Continued from the preceding page. ocapacitance Change from each temperature JIS Capacitance Change from 20 C (%) Murata 55 C 0 C Max. Min. Max. Min. Max. Min. X 2C P R S T C P R S T U C Capacitance Change from (%) Murata 55 C 30 C 0 C Max. Min. Max. Min. Max. Min. 5C/5G C P R S T U yrated Voltage 0E 0G 0J A C E YA H 2A 2 2E Y 2H 2J 3A 3 3F BB E2 GB GC G GF Rated Voltage C2.5V C4V C6.3V C0V C6V C25V C35V C50V C00V C200V C250V C300V C500V C630V CkV C2kV C3.5kV C350V (for Camera Flash Circuit) AC250V X2; AC250V (Safety Standard Recognized Type GB) X/Y2; AC250V (Safety Standard Recognized Type GC) Y3; AC250V (Safety Standard Recognized Type G) Y2, X/Y2; AC250V (Safety Standard Recognized Type GF) ucapacitance Expressed by three-digit alphanumerics. The unit is pico-farad (pf). The first and second figures are significant digits, and the third figure expresses the number of zeros which follow the two numbers.if there is a decimal point, it is expressed by the capital letter "R". In this case, all figures are significant digits. Ex.) R50 R Capacitance 0.5pF.0pF 0pF 0000pF Continued on the following page.

31 Continued from the preceding page. icapacitance Tolerance Capacitance Tolerance TC Series Capacitance Step W ±0.05pF C GRM/GJM V9.9pF 0.pF GRM/GJM V9.9pF 0.pF B ±0.pF C GQM VpF 0.pF. to 9.9pF pf Step and E24 Series ERB V9.9pF pf Step and E24 Series C GRM/GJM V9.9pF 0.pF except C GRM V5pF * pf C ±0.25pF ERB V9.9pF pf Step and E24 Series C VpF 0.pF GQM. to 9.9pF pf Step and E24 Series C GRM/GJM 5. to 9.9pF 0.pF ±0.5pF except C GRM 5. to 9.9pF * pf C ERB/GQM 5. to 9.9pF pf Step and E24 Series G ±2% C GJM U0pF E2 Series C GQM/ERB U0pF E24 Series J ±5% C SL GRM/GA3 U0pF E2 Series C ERB/GQM/GJM U0pF E24 Series B, R, X7R, X5R, ZLM GRJ/GRM/GR7/GA3 E6 Series K ±0% C0G GNM E6 Series B, R, X7R, X5R, ZLM GR4, GM E2 Series B, R, X7R, X7S GRM/GMA E6 Series M ±20% X5R, X7R, X7S GNM E3 Series X7R GA2 E3 Series X5R, X7R, X7S, X6S LLL/LLA/LLM E3 Series Z +80%, -20% F, Y5V GRM E3 Series R epends on individual standards. * E24 series is also available. oindividual Specification Expressed by three figures.!0packaging L E K J F B C T Packaging ø80mm Embossed Taping ø80mm Paper Taping ø80mm Paper Taping (LLL5) ø330mm Embossed Taping ø330mm Paper Taping ø330mm Paper Taping (LLL5) Bulk Bulk Case Bulk Tray

32 Multilayer Ceramic Capacitors(High-Q Capacitors) High-Q Capacitors (Microwave Chip Capacitors) Series: EC Features Low Capacitance with tight tolerance (0. to 5.0 pf, +/ 0.05 pf to +/ 5 %) High Q value / Low ESR at High Frequencies Ultra-Stable C0G Performance (0±30 ppm/ C) 0402 & 020 Case sizes (0. to 5.0 pf & 0. to 5.6 pf, +/ 0.05 pf,+/ pf etc) Pb Free RoHS compliant Recommended Applications Microwave Circuitry Impedance Matching Circuitry Resonant Circuitry Coupling Circuitry RF modules, VCO, BPF, UP, PA Cellular Phone, Bluetooth, Wireless LAN Ceramic Capacitors Product EC: High-Q Capacitors Handling Precautions See Page 48 to 53 Packaging Specifi cations See Page 45, 46, 56 Explanation of Part Numbers E C G 0 E R (Example) Product Size Nominal Capacitance Suffix Material Packaging Style Capacitance Tolerance Construction No Name Ceramic dielectric 2 Internal electrode 3 Substrate electrode 4 Terminal electrode Intermediate electrode 5 External electrode imensions in mm (not to scale) L T W Size Size () L W T L, L2 Z ± ± ± ± ± ± ± ±0. L L2 esign and specifi cations are each subject to change without notice. Ask factory for the current technical specifi cations before purchase and/or use. Should a safety concern arise regarding this product, please be sure to contact us immediately. EC39 00 Apr. 2008

33 Multilayer Ceramic Capacitors(High-Q Capacitors) Packaging Styles and Standard Packaging Quantites Packaging Style E Packaging Styles φ80 reel Paper taping (Pitch: 2 mm) Size Thickness (mm) Quantity : pcs./reel T=0.3 T=0.5 5,000 0,000 Temperature Characteristics Temperature Characteristic C0G Temperature Coeffi cient 0±30 ppm/ C These temperature coeffi cients are calculated between 25 C and 85 C Rated Voltage Rated Voltage C 25 V Nominal Capacitance Ex. R0 R0 2R7 20 Nominal Capacitance 0.0 pf.0 pf 2.7 pf 2 pf The fi rst two digits are signifi cant fi gures of capacitance.small number of people display the point by R. Capacitance tolerance Size () Tolerance Capacitance Range Capacitance Tolerance to 0.50 pf ±0.05 pf to 0.90 pf ±0.075 pf B.0 to 3.0 pf ±0.0 pf C 3.3 to 5.6 pf ±0.25 pf to 0.90 pf ±0.05 pf to 0.90 pf ±0.075 pf 0402 B.0 to 8.2 pf ±0.0 pf C 3.3 to 0.0 pf ±0.25 pf J 2 to 5 pf ±5 % esign and specifi cations are each subject to change without notice. Ask factory for the current technical specifi cations before purchase and/or use. Should a safety concern arise regarding this product, please be sure to contact us immediately. EC40 00 Apr. 2008

34 Multilayer Ceramic Capacitors(High-Q Capacitors) Specifi cations and Testing Methods Characteristics Specifi cations Test Method Operating 55 to 25 C Temperature Range ielectric Withstanding Voltage Insulation Resistance (IR) No dielectric breakdown and/or damage Test voltage: Rated voltage 300 % uration: to 5 s Charge/discharge current: 50 ma max M min. Measuring voltage: Rated voltage uration: 60±5 s Charge / ischarge current: 50 ma max. Capacitance Within the specifi ed tolerance Temperature: 20 +/ 2 C issipation Factor (tan δ) Temperature Characteristics Adhesion tan δ < max. Measuring Frequency: MHz +/ 0 % Measuring Voltage: 0.5 to 5 Vrms C0G : 0 +/-30 ppm/ C Maximum capacitance change at stage to 5 The terminal electrode shall be free from peeling or signs of peeling. Stage Temperature Stage 25±2 C Stage2 25±2 C Stage3 (Reference Temperature) 25±2 C Stage4 85±2 C Stage5 25±2 C Applied force : Size : 020 : 2N Size : 0402 : 5N Arrow direction for 0 seconds R 0.3 Size : Size : 0402 Ceramic Capacitors Sample PC board Bending Strength Appearance : no mechanical damage Bending value : mm Bending speed : mm/s 20 R340 Bending Value 45±2 45±2 Unit : mm Resistance to Solder Heat Solderability Appearance : no mechanical damage I.R. : initial value More than 75 % of the soldered area of both terminal electrodes shall be covered with fresh solder. Standard condition: Temperature 5 to 35 C, Relative humidity 45 to 75 %. Solder temperature : 270±5 C ipping period : 3.0±0.5 s Preheat condition : Order Temp. ( C) Time (s) 80 to to to to 80 Recovery (Standard condition) : 24 ±2 h Solder bath method Solder temperature : 230±5 C ipping period : 4± s Solder : H63A (JIS Z 3283) esign and specifi cations are each subject to change without notice. Ask factory for the current technical specifi cations before purchase and/or use. Should a safety concern arise regarding this product, please be sure to contact us immediately. EC4 00 Apr. 2008

35 Multilayer Ceramic Capacitors(High-Q Capacitors) Characteristics Specifi cations Test Method Temperature cycle Moisture Resistance Moisture Resistant Loading Loading at high temperature Appearance : no mechanical damage I.R. : 000M min. Appearance : no mechanical damage I.R. : 000M min. Capacitance Change: Within ±7.5 % or ±0.02 pf whichever is lager tan δ : max. Appearance : no mechanical damage I.R. : 000M min. Appearance : no mechanical damage I.R. : 000M min. Condition of one cycle Step : 55 ±3 C 30±3 min. Step2 : Room temp 3 min. Step3 : 25±3 C 30±3 min. Step4 : Room temp 3 min. Number of cycles : 5 cycles Recovery (Standard condition) : 24 ±2 h Temperature : 40±2 C Relative Humidity : 90 to 95 % Test period : /0 h Recovery (Standard condition) : 24 ±2 h Temperature : 40±2 C Relative Humidity : 90 to 95 % Applied voltage : Rated voltage Limit surge current : 50 ma max. Test period : /0 h Recovery (Standard condition) : 24 ±2 h Temperature: 25 C±3 C Applied voltage : Rated voltage 200 % Limit surge current : 50 ma max. Test period : /0 h Recovery (Standard condition) : 24 ±2 h Q value vs. Capacitance 020 size size 000 GHz 000 Q value Q value 00 2 GHz 0 3 GHz Comparison data of Q value 0000 at GHz size size Q value Q value GHz 2 GHz Comparison data of Q value GHz MLCC Hi-Q at GHz size Measurements performed Boonton34A Resonant Coaxial-Line and represent typical capacitor performance. esign and specifi cations are each subject to change without notice. Ask factory for the current technical specifi cations before purchase and/or use. Should a safety concern arise regarding this product, please be sure to contact us immediately. EC42 00 Apr. 2008

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