Nano fabrication and optical characterization of nanostructures

Similar documents
Nano fabrication by e-beam lithographie

Fundamentals of nanoscience

Supporting Information

Supplementary Figure 1 Detailed illustration on the fabrication process of templatestripped

Laboratory lecture in Introduction to Nanooptics (2012 SS)

Demonstration of Near-Infrared Negative-Index Materials

Nanostructures Fabrication Methods

Two-Photon Fabrication of Three-Dimensional Metallic Nanostructures for Plasmonic Metamaterials

Università degli Studi di Bari "Aldo Moro"

Supporting information:

Nanosphere Lithography

Supplementary Figure 1 SEM images and corresponding Fourier Transformation of nanoparticle arrays before pattern transfer (left), after pattern

Aluminum for nonlinear plasmonics: Methods Section

High-density data storage: principle

Advanced Vitreous State The Physical Properties of Glass

Development Of Spatial Modulation Spectroscopy Of Single Nano-Objects In Liquid Environments For Biosensing Applications

Third-harmonic generation

Advanced techniques Local probes, SNOM

Optical Spectroscopy of Advanced Materials

Nanostrukturphysik (Nanostructure Physics)

Nanocomposite photonic crystal devices

Nanostructure. Materials Growth Characterization Fabrication. More see Waser, chapter 2

Lecture 20 Optical Characterization 2

Techniken der Oberflächenphysik (Techniques of Surface Physics)

Optics and Spectroscopy

Nanophysics: Main trends

Vibrational Spectroscopies. C-874 University of Delaware

Multiple-Patterning Nanosphere Lithography for Fabricating Periodic Three-Dimensional Hierarchical Nanostructures

Femtosecond laser microfabrication in. Prof. Dr. Cleber R. Mendonca

X-Rays From Laser Plasmas

Nano Optics Based on Coupled Metal Nanoparticles

LASER & PHOTONICS REVIEWS

Chap 4 Optical Measurement

Top down and bottom up fabrication

MSN551 LITHOGRAPHY II

Supplementary Figure 1: Experimental measurement of polarization-dependent absorption properties in all-fibre graphene devices. a.

Energy transport in metal nanoparticle plasmon waveguides

Nanoscale Chemical Imaging with Photo-induced Force Microscopy

Winter College on Optics and Energy February Optical nonlinearities in organic materials

nano-ftir: Material Characterization with Nanoscale Spatial Resolution

Introduction to Nanotechnology Chapter 5 Carbon Nanostructures Lecture 1

Optics of complex micro structures

SUPPLEMENTARY INFORMATION

Supplementary Figure 1 Schematics of an optical pulse in a nonlinear medium. A Gaussian optical pulse propagates along z-axis in a nonlinear medium

2008,, Jan 7 All-Paid US-Japan Winter School on New Functionalities in Glass. Controlling Light with Nonlinear Optical Glasses and Plasmonic Glasses

Supporting Information s for

Ecole Franco-Roumaine : Magnétisme des systèmes nanoscopiques et structures hybrides - Brasov, Modern Analytical Microscopic Tools

U-Shaped Nano-Apertures for Enhanced Optical Transmission and Resolution

Third harmonic upconversion enhancement from a single. semiconductor nanoparticle coupled to a plasmonic antenna

Single Emitter Detection with Fluorescence and Extinction Spectroscopy

Laser matter interaction

The Use of Synchrotron Radiation in Modern Research

Supplementary Figure 1: Power dependence of hot-electrons reduction of 4-NTP to 4-ATP. a) SERS spectra of the hot-electron reduction reaction using

Fabrication and Domain Imaging of Iron Magnetic Nanowire Arrays

Nanotechnology Fabrication Methods.

requency generation spectroscopy Rahul N

Generation of photovoltage in graphene on a femtosecond timescale through efficient carrier heating

Self-study problems and questions Processing and Device Technology, FFF110/FYSD13

Spectroscopies for Unoccupied States = Electrons

Positioning, Structuring and Controlling with Nanoprecision

Superconducting Single-photon Detectors

ECE280: Nano-Plasmonics and Its Applications. Week8

High resolution tomographic diffraction microscopy

Supporting Information

Two-photon single-beam particle trapping of active micro-spheres

Nanoscale optical circuits: controlling light using localized surface plasmon resonances

Fabrication at the nanoscale for nanophotonics

Optical Characterization of Self-Assembled Si/SiGe Nano-Structures

Nanoscale Energy Conversion and Information Processing Devices - NanoNice - Photoacoustic response in mesoscopic systems

Fast and Slow Ligand Exchange at the Surface of Colloidal Gold Nanoparticles

object objective lens eyepiece lens

Positioning, Structuring and Controlling with Nanoprecision

A Photonic Crystal Laser from Solution Based. Organo-Lead Iodide Perovskite Thin Films

Nanojet and Surface Enhanced Raman Spectroscopy (NASERS) for Highly Reproducible and Controllable Single Molecule Detection

Laser assisted structural modifications of strongly aggregated Ag nanoparticles in soda-lime glass

Lichtausbreitung in streuenden Medien: Prinzip und Anwendungsbeispiele

Invited Paper ABSTRACT 1. INTRODUCTION

Supplementary Methods A. Sample fabrication

HYPER-RAYLEIGH SCATTERING AND SURFACE-ENHANCED RAMAN SCATTERING STUDIES OF PLATINUM NANOPARTICLE SUSPENSIONS

Supplementary Figures

Other SPM Techniques. Scanning Probe Microscopy HT10

Nano-optics. Topics: How do we image things on the nanoscale? How do we use nanofabrication for new optical devices? COSMOS 2006 Lecture 1

Nanomaterials and their Optical Applications

Self-assembled nanostructures for antireflection optical coatings

SUPPLEMENTARY INFORMATION

Supplementary Information

Ultra-narrow-band tunable laserline notch filter

Nova 600 NanoLab Dual beam Focused Ion Beam IITKanpur

Nano-Lithography. Edited by Stefan Landis

Studying Metal to Insulator Transitions in Solids using Synchrotron Radiation-based Spectroscopies.

PRINCIPLES OF PHYSICAL OPTICS

SNOM Challenges and Solutions

Biosensing based on slow plasmon nanocavities

THz Electron Gun Development. Emilio Nanni 3/30/2016

Photonic Crystals. Introduction

Lecture 14 Advanced Photolithography

Photolithography 光刻 Part II: Photoresists

Lasers and Electro-optics

Connecting metallic nanoparticles by optical

Supporting Information. Plasmon Ruler for Measuring Dielectric Thin Films

Transcription:

Introduction to nanooptics, Summer Term 2012, Abbe School of Photonics, FSU Jena, Prof. Thomas Pertsch Nano fabrication and optical characterization of nanostructures Lecture 12 1

Optical characterization methods VIS/NIR spectrophotometry (175 nm-3.300 nm, 1x1mm, angle resolved) FTIR spectroscopy (200nm-30.000nm, 1x1mm, angle resolved) spatially resolved spectroscopy with microscope spectrometers (320 nm-16.000nm, 10x10µm or VIS 1x1µm) single particle/metaatom spectroscopy (VIS) white light interferometry for measurement of complex parameters (600-1700 nm, 2x2mm) SNOM - nearfield scanning microscopy (aperture / scattering / two-tip in VIS/NIR) single photon time correlated microscopy (VIS/NIR, 10 ps resolution) PEEM - photoemission electron microscopy: imaging & spectroscopy (resolution: spatial 20nm, energy 100meV, temporal <15fs)

3 Motivation Retrieval of effective parameters R Re Circular dichroism Circular birefringence Refractive index & impedance or Permittivity & Permeability

4 White light interferometry

5 Experimental method White light Fourier-transform spectroscopy in frequency space Fouriertransformation

6 Characterization instrument OSA: Yokogawa AQ6370B WLS: NKT SuperK EXW-6 bandwidth: 600 1700 nm

7 Exemplary results

8 Exemplary results Fishnet

9 Exemplary results Fishnet - measurements wavelength [nm] wavelength [nm] wavelength [nm] wavelength [nm]

10 Exemplary results Fishnet effective parameter retrieval 0,2 wavelength [nm] wavelength [nm] wavelength [nm] wavelength [nm]

11 Spatially resolved spectroscopy

Annealed silver Negative index metamaterial

Space-resolved R and T measurements Bruker Vertex 80v (spectrometer) Hyperion 2000 (microscope) Wavelength range: 300 nm 16 µm Resolution: 0,07 cm -1 0,7 pm - 1,8 nm Mag.: 15x NA: 0.4 (~23,6 ) Spot: ~(250 µm)²

T/R/A-Measurements at different positions Absorption Reflectance Transmitance

15 Characterization of single metaatoms

16 Self-assembled nanoparticles SEM measurements 11nm Au spheres dimer trimer quadromer

Nanoparticles detection methods Min. size of nanoparticle 40 nm 10 nm 5 nm 2.5 nm Dark field microscopy Attenuated total reflectance microscopy Nonlinear signal detection: THG Interferometric optical detection Modulating the sample positions Photothermal imaging (interference contrast and heterodyne detection) 1 7

Nanoparticle optical detection by lateral modulation of sample position P exti( x, y0 sin 2 ft) particle oscillates in the focus P ext I( x, y) ext I sin(2 ft) y 2 ext 2 I 2 sin 2 y 2 (2 ft) DC Component at fundamental Frequency (T1) Component at second Harmonic (T2) Phys. Rev. Lett. 93, 2, 2004

Experimental setup x z y Illumination: solid state lasers, and white light source Modulation frequency f=860hz Detection: PMT and Lock-in amplifier in phase with modulation of sample.

Test measurements Gold colloids with diameters of 20, 40, and 80 nm from British Biocell was mixed in ethanol in ratio of 1:1:1:200 Particles deposited on 160µm cover slip ethanol 20nm 40nm 80nm 200 : 1 : 1 : 1 Image of sample in dark-field microscope 2 0

Test measurements Image of the X component Optical mapping of the transmission at λ = 561 nm recorded at fundamental frequency f=860hz.

Nano technology: challenges Properties strong interaction of light need strong polarizability high density of free electrons noble metals (Au, Ag) + Al mesoscopic dimensions of structures (~ 100 nm) hierarchical strongly broken symmetries on multiple length scales Challenges needed complex nano-scaled order principles are not compatible with the isotropic, short ranging character of bonding forces in strongly polarizable media (metal bonds) often thermodynamic metastable states (shallow local energetic minimum) or even unstable states (no energetic minimum) practical stabilization of matter by kinetic slow down of conversion towards stable thermodynamic phase (practically long time scales)

Nano-Optics technological approaches TOP DOWN EBL Exposure Resist Funct. Layer(s) Substrate BOTTOM UP diblock copolymer unloaded micelle Development loaded micelle Resist Pattern pulling from solution Dry Etching monolayer Removal of Resist oxygen plasma Final Element gold nanostructure

Nano-Optics typical top down technologies lithographic techniques Electron Beam Lithography (EBL) Focused Ion Beam milling (FIB) holographic 3D lithography / multi-photon laser polymerization nano-tip-lithography etching techniques deposition techniques sputtering, evaporation Chemical Vapor Deposition (CVD) Molecular Beam Epitaxy (MBE) atomic layer deposition (ALD) replication technologies Nano Imprint Lithographie (NIL) (XUV lithography, roll-to-roll replication) chemical inversion processes for 3D replication in different classes of materials fiber drawing techniques (low productivity reflects the state of these activities - fundamental research)