Functionalized Graphene and Graphene Oxide: Materials Synthesis and Electronic Applications



Similar documents
Supporting information

Materials Chemistry C

Graphene-based Composite Thin Films for Electronics

Burcu Saner, Firuze Okyay, Fatma Dinç, Neylan Görgülü, Selmiye Alkan Gürsel and Yuda Yürüm*

Performance of Carbon-PTFE Electrodes and PTFE Separators in Electrochemical Double Layer Capacitors (EDLCs)

High Energy Rechargeable Li-S Cells for EV Application. Status, Challenges and Solutions

LITHIUM/AIR SEMI-FUEL CELLS: HIGH ENERGY DENSITY BATTERIES BASED ON LITHIUM METAL ELECTRODES

Addressing the Impact of Temperature Extremes on Large Format Li-Ion Batteries for Vehicle Applications

BATTERY CHEMISTRY RESEARCH IN KOKKOLA

ES Program ORNL. Michael R. Starke, PhD Oak Ridge National Laboratory Power and Energy Systems Energy & Transportation Science Division

Graphene a material for the future

Supporting Information

How Much Lithium does a LiIon EV battery really need?

Study on Wet Etching of AAO Template

1. INTRODUCTION ABSTRACT

Steve Harris. UC Berkeley

Graphene-based composites

Sn-Cu Intermetallic Grain Morphology Related to Sn Layer Thickness

HYDROTHERMAL SYNTHESIS AND CHARACTERIZATION OF LiMnPO 4 CATHODE MATERIALS. Bilen Aküzüm 1

Applications and Benefits of Multi-Walled Carbon Nanotubes (MWCNT)

Supporting Information

Planar ZEBRA Battery for Renewable Integration and Grid Applications

Capacitors for Power Grid Storage

Enhancing electrical conductivity of rubber composites by constructing interconnected network of self-assembled graphene with latex mixing

High Efficiency Black Polymer Solar Cells November 2012 Annual Report

Adhesive Bonding of Natural Stone

o Electrons are written in half reactions but not in net ionic equations. Why? Well, let s see.

5s Solubility & Conductivity

Hydrogen Bond Networks in Graphene Oxide Composite Paper: Structure and Mechanical Properties

Phase Characterization of TiO 2 Powder by XRD and TEM

Development of Materials for Mobile-use Lithium-ion Batteries and Fuel Cells

Lithium Iron Phosphate High Current Rechargeable Lithium Ion Batteries

Chapter 21a Electrochemistry: The Electrolytic Cell

Abuse Testing of Lithium Ion Cells: Internal Short Circuit, Accelerated Rate Calorimetry and Nail Penetration in Large Cells (1-20 Ah)

Reaction Engineering of Polymer Electrolyte Membrane Fuel Cells

Carbon Dioxide Membrane Separation for Carbon Capture using Direct FuelCell Systems

New York City Fire Code & Energy Storage Systems

Fabrication of (Mn,Co) 3 O 4 Surface Coatings onto Alloy Substrates

A Guide to the Safe Use of Secondary Lithium Ion Batteries in Notebook-type Personal Computers

SUPPLEMENTARY INFORMATION. An ionic liquid template approach to graphene-carbon. xerogel composites for supercapacitors with enhanced.

Sony s Energy Storage System. The Sony Lithium Ion Iron Phosphate (LFP) advantage

Electrochemistry - ANSWERS

Go/No-Go Decision: Pure, Undoped Single Walled Carbon Nanotubes for Vehicular Hydrogen Storage. October United States Department of Energy

Corrosion Inhibitors in Antifreeze Coolants

SPECIALTY CARBON BLACKS. High Performance Materials for Advanced Lead Acid Batteries

TiO 2. : Manufacture of Titanium Dioxide. Registered charity number

A comparison among LiPF 6, LiPF 3 (CF 2 CF 3 ) 3 (LiFAP), and LiN(SO 2 CF 2 CF 3 ) 2 (LiBETI) solutions: electrochemical and thermal studies

Inside the Nickel Metal Hydride Battery

THE STUDY OF NANOSTRUCTURED BULK AND THIN FILM LiFePO 4 CATHODE MATERIALS FOR LITHIUM-ION BATTERIES

Second International Renewable Energy Storage Conference November 2007 Bonn/Germany. Overview on current status of lithium-ion batteries

POLYMER BASED PHOTOVOLTAICS

Effect of polytetrafluoroethylene distribution in the gas diffusion layer on water flooding in proton exchange membrane fuel cells

1. PECVD in ORGANOSILICON FED PLASMAS

Supporting Information. Phosphorus-, nitrogen- and carbon- containing polyelectrolyte complex:

Lithium-Ion Battery Safety Study Using Multi-Physics Internal Short-Circuit Model

State of Solid-State Batteries

Advanced Energy Storage Materials for Battery Applications. Advanced Materials December 12 th, Peter H.L. Notten

ANALYSIS OF CARBON FIBER COMPOSITE ELECTRODE

Raman and AFM characterization of carbon nanotube polymer composites Illia Dobryden

Growth of Manganese Oxide Nanoflowers on Vertically-Aligned Carbon Nanotube Arrays for High-Rate Electrochemical Capacitive Energy Storage

Electrochemistry Voltaic Cells

鋰 電 池 技 術 及 產 業 發 展 趨 勢

Artificial Photosynthesis: A Workshop in Solar Cell Design

CHAPTER 1 INTRODUCTION

ELECTROCHEMICAL CELLS

Effect of modified SiO 2 on the properties of PEO-based polymer electrolytes

Nanofillers for lubricants in mechanical applications: improved performances in real systems and technological impact

UNIT 2 PRACTICE EXAM (Part 1: General Chemistry)

Supporting Information

OPTIMIZING OF THERMAL EVAPORATION PROCESS COMPARED TO MAGNETRON SPUTTERING FOR FABRICATION OF TITANIA QUANTUM DOTS

1332 CHAPTER 18 Sample Questions

HYDROGEN STORAGE AND MICROSTRUCTURE INVESTIGATIONS OF La 0.7- Av. Prof. Lineu Prestes, 2242, ZIP , São Paulo, Brazil.

K + Cl - Metal M. Zinc 1.0 M M(NO

EXPERIMENT 7 Electrochemical Cells: A Discovery Exercise 1. Introduction. Discussion

CHM1 Review Exam 12. Topics REDOX

Honors Chemistry: Unit 6 Test Stoichiometry PRACTICE TEST ANSWER KEY Page 1. A chemical equation. (C-4.4)

The Synthesis of trans-dichlorobis(ethylenediamine)cobalt(iii) Chloride

Chemical Engineering - CHEN

Materials for Organic Electronic. Jeremy Burroughes FRS FREng

Chemistry 122 Mines, Spring 2014

Chemistry B11 Chapter 6 Solutions and Colloids

Discovering Electrochemical Cells

Galvanic cell and Nernst equation

JAMIE R. GOMEZ. FAMU-FSU College of Engineering, Ph.D, Chemical Engineering May 2013

Studies on the Effect of Ageing on a range of UK Polymer Bonded Explosives

Question Bank Electrolysis

Electric Battery Actual and future Battery Technology Trends

Study of tungsten oxidation in O 2 /H 2 /N 2 downstream plasma

Best Practices for Handling Nanomaterials in Laboratories

Determining Equivalent Weight by Copper Electrolysis

Active Nanocomposite Materials

Surface activation of plastics by plasma for adhesion promotion

RECYCLING AND UPCYCLING SPENT LITHIUM-ION BATTERIES

Controllable assembly of graphene hybrid materials and their application in energy storage and conversion

Physical Properties and Functionalization of Low-Dimensional Materials

Transcription:

Functionalized Graphene and Graphene Oxide: Materials Synthesis and Electronic Applications Zhi An, Sourangsu Sarkar, Owen C. Compton, SonBinh T. Nguyen Northwestern University

Funding Sourangsu Sarkar Zhi An Owen Compton Collaborators The Ruoff group (Mech. E, Northwestern University UT Austin) Mohammad Naraghi, Tobin Filleter, and Horacio Espinosa (Mech. E, Northwestern University) Stephen Cranford and Markus Buehler (Civil and Environmental Engineering, MIT) Ali Abouimrane and Khalil Amine (Battery Group, Argonne National Laboratory) Karl Putz and L. Catherine Brinson (Mech. E, Northwestern University)

Outline Synthesis and functionalization of graphene oxide and graphene Nanocomposites with graphene oxide and graphene Vacuum-assisted self-assembly (VASA) fabrication of graphene oxide paper and nanocomposites aqueous graphene oxide dispersion Graphene-based structures for energy storage and electronic applications Graphene oxide paper VASA-prepared graphene oxide/pva thin film Hot-pressed graphene/ps thin film

Outline Synthesis and functionalization of graphene oxide and graphene Nanocomposites with graphene oxide and graphene Vacuum-assisted self-assembly (VASA) fabrication of graphene oxide paper and nanocomposites aqueous graphene oxide dispersion Graphene-based structures for energy storage and electronic applications Graphene oxide paper VASA-prepared graphene oxide/pva thin film Hot-pressed graphene/ps thin film

Synthesis and characterization of graphene oxide graphite graphite oxide H 2 SO 4 KMnO 4 Bulk quantities attainable only via chemical route Oxygenation expands interlayer gallery Sonication exfoliates structure into individual nm-thick sheets C/O ratio from 1-2 sonication Hummers, W.S.; Offeman, R.E., J. Am. Chem. Soc. 1958, 80, 1339-1339. graphite oxide suspension aqueous graphene oxide dispersion with Ruoff group

Characterization of graphene oxide TGA FT-IR XPS Thermogravimetric analysis (TGA) reveals pyrolysis of oxygen-containing functional groups Fourier transform-infrared (FT-IR) and X- ray photoelectron spectroscopy (XPS) identify functional groups with Ruoff group

Surface functionalization Thermal reduction can tune C/O ratio in the 2-10 range Nanosheets can be coated with surfactants to maximize interaction between nanofiller and polymer Isocyanates and amines can react to cover the basal plane and sheet edge with nearly limitless number of functional groups CO 2 TEM image of phenyl isocyanatefunctionalized graphene Stankovich, S.; Piner, R.D.; Nguyen, S.T.; Ruoff, R.S., Carbon 2006, 44, 3342-3347. Compton, O.C.; Dikin, D.A.; Putz, K.W.; Brinson, L.C.; Nguyen, S.T., Adv. Mater. 2010, 22, 892-896. with Ruoff group

Surface functionalization Thermal reduction can tune C/O ratio in the 2-10 range Nanosheets can be coated with surfactants to maximize interaction between nanofiller and polymer Isocyanates and amines can react to cover the basal plane and sheet edge with nearly limitless number of functional groups TEM image of phenyl isocyanatefunctionalized graphene Stankovich, S.; Piner, R.D.; Nguyen, S.T.; Ruoff, R.S., Carbon 2006, 44, 3342-3347. Compton, O.C.; Dikin, D.A.; Putz, K.W.; Brinson, L.C.; Nguyen, S.T., Adv. Mater. 2010, 22, 892-896. with Ruoff group

Outline Synthesis and functionalization of graphene oxide and graphene Nanocomposites with graphene oxide and graphene Vacuum-assisted self-assembly (VASA) fabrication of graphene oxide paper and nanocomposites aqueous graphene oxide dispersion Graphene-based structures for energy storage and electronic applications Graphene oxide paper VASA-prepared graphene oxide/pva thin film Hot-pressed graphene/ps thin film

Fabricating thin film of nanocomposites hydrazine 90 C precipitate MeOH Isocyanate-treated graphene oxide in DMF with PS Graphene in DMF with PS Graphene PS nanocomposite powder Powder is amenable to melt-processing SEM image of graphene dispersed in PS matrix Graphene PS thin film PS thin film

PS/Graphene Composite (1 wt%) The reduced sheets have a crumpled morphology Even at 1 wt% loading the polymer matrix appears to be completely filled with sheets Stankovich, S. et al., Graphene-based Composite Materials. Nature 2006, 442, 282-286.

Enhanced conductivity, mechanical, and thermal properties in PS-graphene nanocomposites Graphene transforms insulating polystyrene matrix into electrically conductive composite Percolation threshold of only 0.1 vol% due to excellent dispersion of functionalized graphene in PS matrix Mechanical and thermal properties of parent matrix enhanced by addition of 1 wt% graphene CNTs afford similar improvement, but can cost $250 per gram Stankovich, S. et al., Nature 2006, 442, 282-286. Ramanathan, T. et al., Nat. Nanotechnol. 2008, 3, 327-331.

Outline Synthesis and functionalization of graphene oxide and graphene Nanocomposites with graphene oxide and graphene Vacuum-assisted self-assembly (VASA) fabrication of graphene oxide paper and nanocomposites aqueous graphene oxide dispersion Graphene-based structures for energy storage and electronic applications Graphene oxide paper VASA-prepared graphene oxide/pva thin film Hot-pressed graphene/ps thin film

Graphene oxide paper via vacuum-assisted selfassembly (VASA) Intensity Graphene oxide sheets Filtration Graphene oxide paper Vacuum Membrane filter Stankovich, S. et al. Nature 2006, 448, 457-460. 5 10 15 20 25 2q (deg) with Ruoff group

VASA in the presence of metal ions Rinsing if necessary graphene oxide paper Mg-modified graphene oxide paper with Ruoff group

Lateral crosslinking of graphene oxide sheet by MCl 2 Park et al., ACS Nano 2008, 2(3), 572-578 Tightly bound, still remain after rinsing Weakly bound, can be rinsed away Edge-linked M-carboxylate works agains tensile force to enhance mechanical properties with Ruoff group

Covalent cross-linking with borate Hydrogen bonding is weak link in cross-linking network Annealing drives condensation reactions between borate and surface-bound hydroxyls Covalent linkage increases mechanical stiffness up to 120 GPa Practical tests demonstrate films can accommodate ~50 MPa of strain An, Z.; Compton, O.C.; Putz, K.W.; Brinson, L.C.; Nguyen, S.T., submitted for publication.

Flow direction VASA in the presence of polymer additives Composite solution loaded into vacuum filtration reservoir Vacuum applied to initiate flow over a membrane Filtered solution can be aqueous or organic solvent Process is amenable to hydrophilic and hydrophobic polymers Fabrication speed peaks near 0.1 min layer -1 with Brinson group

Tuning interlayer gallery 100 wt% graphene oxide 0 wt% PVA 51 wt% graphene oxide 49 wt% PVA spacing = 8.7 Å spacing = 16.4 Å Putz, K.W.; Compton, O.C.; Palmeri, M.J.; Nguyen, S.T.; Brinson, L.C., Adv. Funct. Mater. 2010, 20, 3322-3329.

Mechanical enhancement graphene oxide/pva graphene oxide/pmma PVA-based composites improve stiffness by 1000% in comparison to pure polymer, well above the rule of mixtures (ROM) Stiffness of PMMA-based composites is in line with the ROM, while tensile strength increases over 1100% above the pristine polymer Putz, K.W.; Compton, O.C.; Palmeri, M.J.; Nguyen, S.T.; Brinson, L.C., Adv. Funct. Mater. 2010, 20, 3322-3329.

Relating structure and property Composition of interlayer gallery affects mechanical properties graphene oxide film prepared from water Hydrogen bonding readily occurs between nanosheet and polymer within interlayer gallery Carbon backbone introduces covalent aspect to cross-linking network Resulting hybrid network of covalent and hydrogen bonds stiffens the composite thin film graphene oxide/pva composite film prepared from water Putz, K.W.; Compton, O.C.; Palmeri, M.J.; Nguyen, S.T.; Brinson, L.C., Adv. Funct. Mater. 2010, 20, 3322-3329.

Relating structure and property graphene oxide film prepared from water graphene oxide film prepared from DMF graphene oxide/pva composite film prepared from water graphene oxide/pmma composite film prepared from DMF Putz, K.W.; Compton, O.C.; Palmeri, M.J.; Nguyen, S.T.; Brinson, L.C., Adv. Funct. Mater. 2010, 20, 3322-3329.

Partial summary Concentration of polymer in graphene oxide-polymer nanocomposites can be tuned from near trace quantities (<0.1 wt%) to primary component (>70 wt%) Filler-matrix compatibilization affords unprecedented property enhancements in properties Modifying intersheet gallery composition drastically improves mechanical and storage properties of thin films

Outline Synthesis and functionalization of graphene oxide and graphene Nanocomposites with graphene oxide and graphene Vacuum-assisted self-assembly (VASA) fabrication of graphene oxide paper and nanocomposites aqueous graphene oxide dispersion Graphene-based structures for energy storage and electronic applications Graphene oxide paper VASA-prepared graphene oxide/pva thin film Hot-pressed graphene/ps thin film

Anode assembly graphene oxide dispersion graphene oxide paper reduction graphene paper vacuum filtration hydrazine vacuum filtration Abouimrane, A.; Compton, O.C.; Amine, K.; Nguyen, S.T., J. Phys. Chem. C 2010, 114, 12800-12804.

LIB Cell assembly Li metal Graphene paper Cathode current collector (Al foil) Polymer separator Anode current collector (Cu foil) Graphene paper is loaded into coin cell without any polymer binder or additive Graphene powder cells require PVDF binder and acetylene black Electrolyte solution containing LiPF 6 in NMP is added between separator and electrodes Cells are prepared and sealed in a He-filled glove box Coin cell scheme Electrochemical measurements made using a Maccor battery cycler

Performance of graphene-based anode graphene paper graphene powder Abouimrane, A.; Compton, O. C.; Nguyen, S. T.; Amine, K. J. Phys. Chem. C, 2010, 114(29), 12800 12804

Anode modification Functional groups can be covalently bound to the nanosheet surface Isocyanates yield carbamate moieties on the basal plane, similar to the carbonate ions that can facilitate SEI layer formation CO 2 TEM image of phenyl isocyanatefunctionalized graphene Stankovich, S.; Piner, R.D.; Nguyen, S.T.; Ruoff, R.S., Carbon 2006, 44, 3342-3347.

Anode modification Compton, O.C.; Jain, B; Abouimrane, A; Dikin, D.A.; Amine, K.; Nguyen, S.T., ACS Nano 2011, 5(6), 4380-4391

Anode assembly graphene oxide dispersion graphene oxide paper reduction Graphenepolymer paper vacuum filtration hydrazine Add polymer vacuum filtration Abouimrane, A.; Compton, O.C.; Amine, K.; Nguyen, S.T., J. Phys. Chem. C 2010, 114, 12800-12804.

Composite electrodes Lithium ion batteries poses some explosion hazards due to high potential in proximity to flammable organic electrolytes Polymers with high ionic conductivity for Li + ions (i.e., PEO) are candidates to replace these electrolytes charge-discharge profiles cell cyclability Abouimrane, A.; Compton, O.C.; Amine, K.; Nguyen, S.T., J. Phys. Chem. C 2010, 114, 12800-12804.

Ternary metal oxide-graphene composites for LIBs Specific energy values ~ theoretical prediction for lithium insertion/extraction. Material remains electrochemically stable over the course of 100 charge/discharge cycles Donghai Wang; Rong Kou; Daiwon Choi; Zhenguo Yang; Zimin Nie; Juan Li; Laxmikant V. Saraf; Dehong Hu; Jiguang Zhang; Gordon L. Graff; Jun Liu; Michael A. Pope; Ilhan A. Aksay; ACS Nano 2010, 4, 1587-1595.

Li-air battery based on porous 3-D graphene structures Discharge capacity ~ 15000 mah/g carbon Specific energy is ~40000 Wh/kg carbon, with an average voltage of 2.65 (highest capacity reported to date for nonaqueous Li O 2 batteries Xiao, Liu, Zhang, and coworkers Nano Lett., 2011, 11 (11), 5071 5078

Substrates for flexible LEDs Hong and coworkers, Adv. Mater. 2011, 23, 4614-4619 DOI: 10.1002/adma.201102407

Electrically conductive graphene-based ink for printedcircuit labels Vorbeck Materials (Jessup, MD)

Roll-to-roll production of 30-inch graphene film for transparent electrodes Sukang Bae, Hyeongkeun Kim, Youngbin Lee, Xiangfan Xu, Jae- Sung Park, Yi Zheng, Jayakumar Balakrishnan, Tian Lei, Hye Ri Kim, Young Il Song, Young-Jin Kim, Kwang S. Kim, Barbaros O zyilmaz5, Jong-Hyun Ahn, Byung Hee Hong, and Sumio Iijima, Nat. Nantechnol. 2010, DOI: 10.1038/NNANO.2010.132

Update on commercial scale-up A worker at XG Sciences (East Lansing, MI) operates equipment that produces graphene at the multi-kilogram-per-day scale. Credit: Lawrence T. Drzal/XG Science

Conclusions Graphene oxide and graphene are versatile nanomaterials that can be assembled into a wide range of macroscopic structures and objects Chemical modifications can greatly improve the properties of the resulting carbon-based assembled materials Thank you for your attention Questions?