Literature DB >> 27499569

Surface conductance of graphene from non-contact resonant cavity.

Jan Obrzut1, Caglar Emiroglu2, Oleg Kirillov3, Yanfei Yang4, Randolph E Elmquist5.   

Abstract

A method is established to reliably determine surface conductance of single-layer or multi-layer atomically thin nano-carbon graphene structures. The measurements are made in an air filled standard R100 rectangular waveguide configuration at one of the resonant frequency modes, typically at TE103 mode of 7.4543 GHz. Surface conductance measurement involves monitoring a change in the quality factor of the cavity as the specimen is progressively inserted into the cavity in quantitative correlation with the specimen surface area. The specimen consists of a nano-carbon-layer supported on a low loss dielectric substrate. The thickness of the conducting nano-carbon layer does not need to be explicitly known, but it is assumed that the lateral dimension is uniform over the specimen area. The non-contact surface conductance measurements are illustrated for a typical graphene grown by chemical vapor deposition process, and for a high quality monolayer epitaxial graphene grown on silicon carbide wafers for which we performed non-gated quantum Hall resistance measurements. The sequence of quantized transverse Hall resistance at the Landau filling factors ν = ±6 and ±2, and the absence of the Hall plateau at ν = 4 indicate that the epitaxially grown graphene is a high quality mono-layer. The resonant microwave cavity measurement is sensitive to the surface and bulk conductivity, and since no additional processing is required, it preserves the integrity of the conductive graphene layer. It allows characterization with high speed, precision and efficiency, compared to transport measurements where sample contacts must be defined and applied in multiple processing steps.

Entities:  

Keywords:  graphene; microwave cavity; noncontact; nondestructive; surface conductance

Year:  2016        PMID: 27499569      PMCID: PMC4971583          DOI: 10.1016/j.measurement.2016.03.020

Source DB:  PubMed          Journal:  Measurement (Lond)        ISSN: 0263-2241            Impact factor:   3.927


  5 in total

1.  Toward clean and crackless transfer of graphene.

Authors:  Xuelei Liang; Brent A Sperling; Irene Calizo; Guangjun Cheng; Christina Ann Hacker; Qin Zhang; Yaw Obeng; Kai Yan; Hailin Peng; Qiliang Li; Xiaoxiao Zhu; Hui Yuan; Angela R Hight Walker; Zhongfan Liu; Lian-Mao Peng; Curt A Richter
Journal:  ACS Nano       Date:  2011-10-19       Impact factor: 15.881

2.  Temperature-dependent transport in suspended graphene.

Authors:  K I Bolotin; K J Sikes; J Hone; H L Stormer; P Kim
Journal:  Phys Rev Lett       Date:  2008-08-25       Impact factor: 9.161

3.  A roadmap for graphene.

Authors:  K S Novoselov; V I Fal'ko; L Colombo; P R Gellert; M G Schwab; K Kim
Journal:  Nature       Date:  2012-10-11       Impact factor: 49.962

4.  Low carrier density epitaxial graphene devices on SiC.

Authors:  Yanfei Yang; Lung-I Huang; Yasuhiro Fukuyama; Fan-Hung Liu; Mariano A Real; Paola Barbara; Chi-Te Liang; David B Newell; Randolph E Elmquist
Journal:  Small       Date:  2014-08-18       Impact factor: 13.281

5.  Disordered Fermi liquid in epitaxial graphene from quantum transport measurements.

Authors:  Samuel Lara-Avila; Alexander Tzalenchuk; Sergey Kubatkin; Rositza Yakimova; T J B M Janssen; Karin Cedergren; Tobias Bergsten; Vladimir Fal'ko
Journal:  Phys Rev Lett       Date:  2011-10-12       Impact factor: 9.161

  5 in total
  8 in total

1.  Examining epitaxial graphene surface conductivity and quantum Hall device stability with Parylene passivation.

Authors:  Albert F Rigosi; Chieh-I Liu; Bi Yi Wu; Hsin-Yen Lee; Mattias Kruskopf; Yanfei Yang; Heather M Hill; Jiuning Hu; Emily G Bittle; Jan Obrzut; Angela R Hight Walker; Randolph E Elmquist; David B Newell
Journal:  Microelectron Eng       Date:  2018-03-14       Impact factor: 2.523

2.  Quantifying Fluorogenic Dye Hydration in an Epoxy Resin by Noncontact Microwave Dielectric Spectroscopy.

Authors:  Sindhu Seethamraju; Jan Obrzut; Jack F Douglas; Jeremiah W Woodcock; Jeffrey W Gilman
Journal:  J Phys Chem B       Date:  2020-03-24       Impact factor: 2.991

3.  Preservation of Surface Conductivity and Dielectric Loss Tangent in Large-Scale, Encapsulated Epitaxial Graphene Measured by Noncontact Microwave Cavity Perturbations.

Authors:  Albert F Rigosi; Nicholas R Glavin; Chieh-I Liu; Yanfei Yang; Jan Obrzut; Heather M Hill; Jiuning Hu; Hsin-Yen Lee; Angela R Hight Walker; Curt A Richter; Randolph E Elmquist; David B Newell
Journal:  Small       Date:  2017-05-19       Impact factor: 13.281

4.  A Q-Band Free-Space Characterization of Carbon Nanotube Composites.

Authors:  Ahmed M Hassan; Jan Obrzut; Edward J Garboczi
Journal:  IEEE Trans Microw Theory Tech       Date:  2016-09-19       Impact factor: 3.599

5.  Dielectric Characterization of Confined Water in Chiral Cellulose Nanocrystal Films.

Authors:  Bharath Natarajan; Caglar Emiroglu; Jan Obrzut; Douglas M Fox; Beatriz Pazmino; Jack F Douglas; Jeffrey W Gilman
Journal:  ACS Appl Mater Interfaces       Date:  2017-04-14       Impact factor: 9.229

6.  Elucidating Charge Transport Mechanisms in Cellulose-Stabilized Graphene Inks.

Authors:  Ana C M de Moraes; Jan Obrzut; Vinod K Sangwan; Julia R Downing; Lindsay E Chaney; Dinesh Patel; Randolph E Elmquist; Mark C Hersam
Journal:  J Mater Chem C Mater       Date:  2020       Impact factor: 7.393

7.  Contactless Resonant Cavity Dielectric Spectroscopic Studies of Cellulosic Paper Aging.

Authors:  Mary Kombolias; Jan Obrzut; Michael T Postek; Dianne L Poster; Yaw S Obeng
Journal:  Anal Lett       Date:  2019       Impact factor: 2.329

8.  Dielectric spectroscopic studies of biological material evolution and application to paper.

Authors:  Mary Kombolias; Jan Obrzut; Dianne L Poster; Karl Montgomery; Michael T Postek; Yaw S Obeng
Journal:  Tappi J       Date:  2018       Impact factor: 0.716

  8 in total

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