Supporting Information for

Similar documents
Electrochemical Water Splitting by Layered and 3D Cross-linked Manganese Oxides: Correlating Structural Motifs and Catalytic Activity

Division of Physics and Semiconductor Science, Dongguk University, Seoul 04620, South Korea

Supporting Information

Correlating Hydrogen Evolution Reaction Activity in Alkaline Electrolyte to Hydrogen Binding Energy on Monometallic Surfaces

Nitrogen and sulfur co-doped porous carbon derived from human hair as. highly efficient metal-free electrocatalyst for hydrogen evolution reaction

Supporting Information. Mechanistic Studies of the Oxygen Evolution Reaction by a Cobalt- Phosphate Catalyst at Neutral ph

Achieving High Electrocatalytic Efficiency on Copper: A Low-Cost Alternative to Platinum for Hydrogen Generation in Water

A Robust and Highly Active Copper-Based Electrocatalyst. for Hydrogen Production at Low Overpotential in Neutral

Supporting Information

Table S1. Electrocatalyst plating conditions Metal Anode (foil) Plating Potential (V versus Ag/AgCl) Rh Pt 1 M HCl/HPLC.

An extraordinarily stable catalyst: Pt NPs supported on two-dimensional Ti 3 C 2 X 2 (X=OH, F) nanosheets for Oxygen Reduction Reaction

Co 3 O 4 Nanocrystals on Single-Walled Carbon Nanotubes as a Highly Efficient Oxygen-Evolving Catalyst

Supplementary Materials

Efficient Water Oxidation Catalyzed by Cationic Cobalt Porphyrins: Critical Roles for the Buffer Base. Dong Wang and John T.

Electronic supplementary information. Amorphous carbon supported MoS 2 nanosheets as effective catalyst for electrocatalytic hydrogen evolution

In a typical routine, the pristine CNT (purchased from Bill Nanotechnology, Inc.) were

Achieving Selective and Efficient Electrocatalytic Activity for CO 2 Reduction Using Immobilized Silver Nanoparticles

Nickel Sulfides Freestanding Holey Films as Air-Breathing Electrodes for. Flexible Zn-Air Batteries

Electronic Supplementary Information for: Evaluation of Pt, Ni, and Ni Mo Electrocatalysts for Hydrogen Evolution on Crystalline Si Electrodes

Jaemin Kim, Xi Yin, Kai-Chieh Tsao, Shaohua Fang and Hong Yang *

Supporting Information

Supporting Information. Electropolymerization of aniline on nickel-based electrocatalysts substantially

N-doped Carbon-Coated Cobalt Nanorod Arrays Supported on a Titanium. Mesh as Highly Active Electrocatalysts for Hydrogen Evolution Reaction

Supporting Information. Electrochemical Reduction of Carbon Dioxide on Nitrogen-Doped Carbons: Insights from Isotopic Labeling Studies

Supporting Information For:

Nickel Phosphine Catalysts with Pendant Amines. for the Electrocatalytic Oxidation of Alcohols

Supporting Information. Oxygen Reduction Catalysis at a Dicobalt Center: The Relationship of Faradaic Efficiency to Overpotential

Supplementary Information. Seeding Approach to Noble Metal Decorated Conducting Polymer Nanofiber Network

Highly Active Cobalt Phosphate and Borate Based Oxygen Evolving Catalysts Operating in Neutral and Natural Waters

Supplementary Information. Unusual High Oxygen Reduction Performance in All-Carbon Electrocatalysts

Pt-Cu Hierarchical Quasi Great Dodecahedrons with Abundant

Department of Chemical, Materials and Biomolecular Engineering, University of Connecticut, 191

Supporting Information

Facile and Gram-scale Synthesis of Metal-free Catalysts: Toward Realistic Applications for Fuel Cells

Scientific Report. Concerning the implementation of the project: January December 2014

Enhancement of the electrocatalytic activity of Pt nanoparticles in oxygen reduction by chlorophenyl functionalization

Supporting Information. The Study of Multireactional Electrochemical Interfaces Via a Tip Generation/Substrate

Topic: APPLIED ELECTROCHEMISTRY. Q.1 What is polarization? Explain the various type of polarization.

[Supplementary Information] One-Pot Synthesis and Electrocatalytic Activity of Octapodal Au-Pd Nanoparticles

Chapter 24. Electrogravimetry and Coulometry

Electronic Supplementary Information

Supporting Information

Facile Synthesis of Hybrid Graphene and Carbon Nanotube as. Metal-Free Electrocatalyst with Active Dual Interfaces for

Single Catalyst Electrocatalytic Reduction of CO 2 in Water to H 2 :CO Syngas Mixtures with Water Oxidation to O 2

Supporting Information for. Highly durable Pd metal catalysts for the oxygen. reduction reaction in fuel cells; Coverage of Pd metal with.

Supporting Information

Characterization of an Amorphous Iridium Water-Oxidation Catalyst Electrodeposited from Organometallic Precursors

Determination of Electron Transfer Number for Oxygen Reduction Reaction: from Theory to Experiment

SUPPLEMENTARY INFORMATION

Scanning Electrochemical Microscopy. 45. Study of the Kinetics of Oxygen Reduction on Platinum with Potential Programming of the Tip

Electronic Supplementary Material (ESI) for Chemical Communications This journal is The Royal Society of Chemistry 2011

Supporting Information for. Highly active catalyst derived from a 3D foam of Fe(PO 3 ) 2 /Ni 2 P for extremely efficient water oxidation

Carbon Quantum Dots/NiFe Layered Double Hydroxide. Composite as High Efficient Electrocatalyst for Water

Electronic Supplementary Information

Electronic Supplementary Information

Electronic Supplementary Information

Supporting Information for

ELECTROCHEMICAL REDUCTION OF CARBON DIOXIDE INTO FORMATE

Supporting Information

Electronic Supplementary Information. Hydrogen Evolution Reaction (HER) over Electroless- Deposited Nickel Nanospike Arrays

High-Flux CO Reduction Enabled by Three-Dimensional Nanostructured. Copper Electrodes

Templated electrochemical fabrication of hollow. molybdenum sulfide micro and nanostructures. with catalytic properties for hydrogen production

Supporting information: Stability limits of tin-based electrocatalyst supports. Max-Planck-Institut für Eisenforschung GmbH, Düsseldorf, Germany

Nanomaterials and Chemistry Key Laboratory, Wenzhou University, Wenzhou, (P. R. China).

Specific Determination of Hydrogen Peroxide With A Catalase Biosensor Based on Mercury Thin Film Electrodes

Title: Electrochemical studies for oxygen reduction reaction using Zn 1-x Co x O for fuel cell applications.

Electro-deposition of Pd on Carbon paper and Ni foam via surface limited redox-replacement reaction for oxygen reduction reaction

Unit 2 B Voltammetry and Polarography

ELECTROCATALYSIS OF THE HYDROGEN-EVOLUTION REACTION BY ELECTRODEPOSITED AMORPHOUS COBALT SELENIDE FILMS

Supplemental Information (SI): Cobalt-iron (oxy)hydroxide oxygen evolution electrocatalysts: The role of

Transient Electrocatalytic Water Oxidation in Single Nanoparticle Collision

METHODS FOR DETERMINATIONS OF ELECTROLYTES AND BLOOD GASES

Effect of Ball Milling on Electrocatalytic Activity of Ba 0.5 Sr 0.5 Co 0.8 Fe 0.2 O 3 toward Oxygen Evolution Reaction

η (mv) J (ma cm -2 ) ma cm

Electrocrystallization of monolayer protected gold clusters: opening the door to quality, quantity and new structures

Sunlight-Assisted, Biocatalytic Formate Synthesis from CO 2 and Water Using Silicon-Based Photoelectrochemical Cell

Measurements with Ion Selective Electrodes: Determination of Fluoride in Toothpaste

Figure 1. Contact mode AFM (A) and the corresponding scanning Kelvin probe image (B) of Pt-TiN surface.

Electronic Supplementary Information

Chapter 2. Materials and Methods

Electronic Supplementary Information

A super-efficient cobalt catalyst for electrochemical hydrogen production from neutral water with 80 mv overpotential

Voltammetric Comparison of the Electrochemical Oxidation of Toluene on Monolithic and Reticulated Glassy Carbon Electrodes in Aqueous Medium

Supplementary Material (ESI) for Chemical Communications This journal is (c) The Royal Society of Chemistry Supporting Information

Chemistry: The Central Science. Chapter 20: Electrochemistry

Half-Cell, Steady-State Flow-Battery Experiments. Robert M. Darling and Mike L. Perry

Electronic Supplementary Information

Operando Spectroscopic Analysis of an Amorphous Cobalt Sulfide Hydrogen Evolution Electrocatalyst

FeP and FeP 2 Nanowires for Efficient Electrocatalytic Hydrogen Evolution Reaction

Supporting Information. 13 Pages, 9 Figures. Mechanisms of Humic Acid Fouling on Capacitive and Insertion Electrodes for Electrochemical Desalination

SUPPLEMENTARY INFORMATION

Supporting Information

Buffers, Electrochemistry. Jan Pláteník & Tomáš Navrátil 2010/2011

Supporting Information

Research & Reviews In. Study on kinetics behavior of the graphite felt electrode in the lead acid flow battery

Materials. The three sulfonated calixarene host molecules, p- molecules, 5,6-dihydropyrazion[1,2,3,4-lmn][1,10]phenanthroline-4,7-diium (DP 2+ ) 4

Supporting Information

Role of iron in preparation and oxygen reduction reaction activity of nitrogen-doped carbon

Supporting Information. High Wettable and Metallic NiFe-Phosphate/Phosphide Catalyst Synthesized by

Übung 7: Elektrochemische Kinetik (2. Teil) Konzentrationsüberspannung

Transcription:

Supporting Information for Effects of aqueous buffers on electrocatalytic water oxidation with an iridium oxide material electrodeposited in thin layers from an organometallic precursor Maxwell N. Kushner-Lenhoff, James D. Blakemore, Nathan D. Schley, Robert H. Crabtree,* and Gary W. Brudvig* Department of Chemistry, Yale University, P.O. Box 208107, New Haven, Connecticut 06520-8107 E-mail: gary.brudvig@yale.edu (G.W.B.); robert.crabtree@yale.edu (R.H.C.) Current address: Dow Chemical Company, 450 Park Avenue Suite 2200, New York, New York 10022 Current address: Beckman Institute, and Division of Chemistry and Chemical Engineering, California Institute of Technology, MC 139-74, Pasadena, California 91125 Index Experimental Methods Additional electrochemical data Oxygen evolution data References Page S2-S3 S4-S8 S9 S10 S1

Experimental Methods All reagents were purchased from major commercial suppliers and used as received. MilliQ water was used to prepare all aqueous solutions. Sample Preparation Compound 1 was synthesized according to literature procedures. 1 For catalyst electrodeposition, 1.72 mm solutions of 1 were prepared in 0.1 M KNO 3 electrolyte. To ensure maximum reproducibility, depositions were each conducted with a fresh portion of catalyst precursor solution in all experiments where a quantitative effect on overpotential was measured, and also for all experiments with Na 2 SiF 6. Unless noted otherwise, the buffering solutions contained both the buffer and 0.1 M KNO 3 electrolyte. (In some preliminary studies, the working solution did not contain KNO 3.) Additional electrolyte does not have an observable effect on the results in the cases where the buffer concentration or salt concentration is near or above 0.1 M. The ph of the buffered solutions was monitored with a Corning PerpHect ph electrode. In some cases, the ph of the solutions was adjusted by addition of dilute HNO 3 or KOH, as needed. Electrochemistry Electrochemical measurements were made on a Princeton Applied Research Versastat 4-400 potentiostat/galvanostat using a standard single-chamber three-electrode configuration. A Ag/AgCl reference electrode (Ag/AgCl vs. NHE = +197 mv) and platinum counter electrode were used in all experiments unless noted otherwise. The electrochemical cell was a small threeneck flask with two of the three necks threaded to hold the counter and working electrodes in place. The working electrode was a platinum rotating-disk electrode (RDE) (Pine E3; Pt disk in teflon casing) (surface area: 0.196 cm 2 ). All experiments characterizing electrocatalyst activity were performed using thin preparations of BL deposited by ten cycles of voltammetry from 0.2 to 1.5 V vs. NHE at a scan rate of 50 mv/s. BL was electrodeposited onto the stationary platinum rotating-disk electrode, which served as the working electrode. To avoid mass transport limitations, Tafel plots were generated with electrode rotation using a Princeton Applied Research Model 616 variable-speed rotator. Although the RDE was stationary during deposition, it was rotated at 1500 rpm during the collection of Tafel data. This rate was found to allow water oxidation to occur without significant mass transport limitations. However, it was not sufficient to overcome all mass transport limitations, as faster rotation speeds gave higher sustained currents at the highest overpotentials. Preliminary Tafel plots were collected from low-to-high applied potential in 50 mv steps with a dwell time of 300 sec. Some more detailed studies (the phosphate concentration dependence and trifluoromethanesulfonamide work) were done with potentials increasing in 25 mv steps and with 150 sec dwell time. Current densities reported in the paper are calculated based on observed current at the end of each potential step. Overpotential data (e.g., Figure 1) were calculated using the difference between the phadjusted thermodynamic potential for water oxidation (E o ) and the applied potential required to achieve a steady-state current of 0.5 ma cm -2. Error bars reflect the error of replicate electrochemical measurements for the thin layers of catalyst being used and likely represent an overestimate. No correction has been made here for uncompensated cell resistance (i.e., ir drop). S2

Oxygen Evolution A YSI Clark-type oxygen electrode was used to detect oxygen evolved during electrochemically-driven water oxidation as described previously. 2 The Clark electrode was placed in a custom water-jacketed glass vessel that allows for working, reference, and counter electrodes to be fitted with an O-ring and inserted using screw-in plastic caps. The working electrode was a stationary platinum disk electrode (surface area: 0.017 cm 2 ). Magnetic stirring was used to ensure that the solution was mixed. Electrochemical data collected during oxygen detection were, however, limited by mass transport and are, therefore, not strictly comparable to buffering results using the RDE. S3

Additional Tafel Plots Figure S1. Tafel plot data for preparation of Figure 1. With phosphate as buffer (upper panel; solid points), the expected ph dependence was observed (i.e., the overpotential is essentially invariant with ph, shifting by approximately 59 mv per ph unit). In the absence of phosphate (lower panel; unfilled squares), the overpotential is ph dependent and increases as the solution ph is increased. We also note the increased overpotential at ph 4 in the presence of dilute phosphate. It seems that, under these conditions, phosphate is inactive as a buffer but may still coordinate to catalytic sites, resulting in a net deleterious effect. Phosphate buffer concentration was 5 mm. S4

Figure S2. Tafel plot for Na 2 SiF 6 as buffer. Buffer studies were performed using Na 2 SiF 6, previously found by Mallouk et al. to be effective in the case of iridium oxide nanoparticles. 3 In this system, HF/F - (formed in situ) acts as the buffering agent and has a pk a of 3.5. 4 Due to complications from the HF, a platinum wire previously referenced versus Ag/AgCl was used as the reference electrode for these experiments. Unlike in the case of the iridium oxide nanoparticles, Na 2 SiF 6 was found to be ineffective for the BL system. S5

Figure S3. Tafel plot for acetate buffer Within the buffering range of acetate (ph = 4.75 ± 0.5), the current density was ph-dependent but was not improved markedly versus the unbuffered case. Acetate buffer also causes corrosion at current densities of as low as 0.5 ma cm -2, resulting in loss of activity as shown below. Red vertical line indicates E o of 950 mv vs. NHE at ph 4.75. S6

Figure S4. Tafel plot for dilute bicarbonate Dilute bicarbonate buffer was shown to decrease observed overpotential by 60 mv, but the Tafel plot has the same slope as unbuffered electrolyte, suggesting that there is no change in mechanism. Thus, the observed effect is attributed to bicarbonate s role in countering local ph effects. S7

Figure S5. Tafel plot for trifluoromethanesulfonamide (TFMS) as buffer. At a ph of 6.33 (the lower pk a of TFMS) in 0.1 M KNO 3 solution and 10 mm TFMS, the current response shows an apparent buffered overpotential of 139 mv less than the unbuffered case (255 mv vs. 394). However, as is evident from the oxygen evolution data (see below), some of this increased current flow is attributed to oxidative degradation of the buffer. Also of note is the observation that TFMS causes corrosion at current densities above 0.5 ma cm -1, which could be due to catalyst fouling. S8

Figure S6. Comparison of oxygen evolution in unbuffered electrolyte electrolyte buffered with trifluoromethanesulfonamide (TFMS) Oxygen evolution data with 50 mm TFMS at 1.12 V vs. NHE show decreasing oxygenevolution activity over the course of the 10-minute experiment. This decrease in catalytic activity can be attributed to deactivation of the catalyst under the experimental conditions. In addition, the O 2 yield of this experiment was only 88% of that predicted based on current flow, showing that some current was consumed in an unproductive pathway, most likely oxidative degradation of the TFMS buffer. Black arrows show start and stop of the electrode polarization at time zero and after 10 minutes. As in the case of phosphate (Figure 4), essentially no oxygen is evolved in the absence of the buffer. S9

References 1 Ogo, S.; Makihara, N.; Watanabe, Y. Organometallics 1999, 18, 5470-5474. 2 (a) Schley, N. D.; Blakemore, J. D.; Subbaiyan, N. K.; Incarvito, C. D.; D Souza, F.; Crabtree, R. H.; Brudvig, G. W. J. Am. Chem. Soc. 2011, 133, 10473 10481. (b) Blakemore, J. D.; Schley, N. D.; Kushner-Lenhoff, M. N.; Winter, A. M.; D'Souza, F.; Crabtree, R. H.; Brudvig, G. W. Inorg. Chem. 2012, 51, 7749. (c) Blakemore, J. D.; Smith, D. M. Fusion: J. Am. Scientific Glassblowers Soc. 2012, 51 (2), 21-27. 3 (a) Hara, M.; Waraksa, C. C.; Lean, J. T.; Lewis, B. A.; Mallouk, T. E. Journal of Physical Chemistry A 2000, 104, 5275. (b) Hoertz, P. G.; Kim, Y.-I.; Youngblood, W. J.; Mallouk, T. E. J. Phys. Chem. B 2007, 111, 6845 6856. 4 Mellor, J. W. A Comprehensive Treatise on Inorganic and Theoretical Chemistry; Longmans, Green & Co.: New York, 1925; vol. 6, page 943. S10