Literature DB >> 22214512

Manipulating thermal conductance at metal-graphene contacts via chemical functionalization.

Patrick E Hopkins1, Mira Baraket, Edward V Barnat, Thomas E Beechem, Sean P Kearney, John C Duda, Jeremy T Robinson, Scott G Walton.   

Abstract

Graphene-based devices have garnered tremendous attention due to the unique physical properties arising from this purely two-dimensional carbon sheet leading to tremendous efficiency in the transport of thermal carriers (i.e., phonons). However, it is necessary for this two-dimensional material to be able to efficiently transport heat into the surrounding 3D device architecture in order to fully capitalize on its intrinsic transport capabilities. Therefore, the thermal boundary conductance at graphene interfaces is a critical parameter in the realization of graphene electronics and thermal solutions. In this work, we examine the role of chemical functionalization on the thermal boundary conductance across metal/graphene interfaces. Specifically, we metalize graphene that has been plasma functionalized and then measure the thermal boundary conductance at Al/graphene/SiO(2) contacts with time domain thermoreflectance. The addition of adsorbates to the graphene surfaces are shown to influence the cross plane thermal conductance; this behavior is attributed to changes in the bonding between the metal and the graphene, as both the phonon flux and the vibrational mismatch between the materials are each subject to the interfacial bond strength. These results demonstrate plasma-based functionalization of graphene surfaces is a viable approach to manipulate the thermal boundary conductance.
© 2012 American Chemical Society

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Year:  2012        PMID: 22214512     DOI: 10.1021/nl203060j

Source DB:  PubMed          Journal:  Nano Lett        ISSN: 1530-6984            Impact factor:   11.189


  11 in total

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3.  Interface Energy Coupling between β-tungsten Nanofilm and Few-layered Graphene.

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4.  Enhancement of Thermal Boundary Conductance of Metal-Polymer System.

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Journal:  Nanomaterials (Basel)       Date:  2020-04-02       Impact factor: 5.076

5.  Physical and chemical descriptors for predicting interfacial thermal resistance.

Authors:  Yen-Ju Wu; Tianzhuo Zhan; Zhufeng Hou; Lei Fang; Yibin Xu
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6.  Thermionic transport across gold-graphene-WSe2 van der Waals heterostructures.

Authors:  Md Golam Rosul; Doeon Lee; David H Olson; Naiming Liu; Xiaoming Wang; Patrick E Hopkins; Kyusang Lee; Mona Zebarjadi
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Review 7.  Heat Transport Control and Thermal Characterization of Low-Dimensional Materials: A Review.

Authors:  Alexandros El Sachat; Francesc Alzina; Clivia M Sotomayor Torres; Emigdio Chavez-Angel
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8.  Functionalization mediates heat transport in graphene nanoflakes.

Authors:  Haoxue Han; Yong Zhang; Nan Wang; Majid Kabiri Samani; Yuxiang Ni; Zainelabideen Y Mijbil; Michael Edwards; Shiyun Xiong; Kimmo Sääskilahti; Murali Murugesan; Yifeng Fu; Lilei Ye; Hatef Sadeghi; Steven Bailey; Yuriy A Kosevich; Colin J Lambert; Johan Liu; Sebastian Volz
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9.  Bimodal Control of Heat Transport at Graphene-Metal Interfaces Using Disorder in Graphene.

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10.  Prediction of thermal boundary resistance by the machine learning method.

Authors:  Tianzhuo Zhan; Lei Fang; Yibin Xu
Journal:  Sci Rep       Date:  2017-08-02       Impact factor: 4.379

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