Scinovex
articleTop 10% cited

First-principles prediction of charge mobility in carbon and organic nanomaterials

Nanoscale · 2012 · Vol. 4(15) · pp. 4348–4348
Jinyang XiMengqiu LongLing TangDong WangZhigang Shuai

Abstract

We summarize our recent progresses in developing first-principles methods for predicting the intrinsic charge mobility in carbon and organic nanomaterials, within the framework of Boltzmann transport theory and relaxation time approximation. The electron-phonon couplings are described by Bardeen and Shockley's deformation potential theory, namely delocalized electrons scattered by longitudinal acoustic phonons as modeled by uniform lattice dilation. We have applied such methodology to calculating the charge carrier mobilities of graphene and graphdiyne, both sheets and nanoribbons, as well as closely packed organic crystals. The intrinsic charge carrier mobilities for graphene sheet and naphthalene are calculated to be 3 × 10(5) and ∼60 cm(2) V(-1) s(-1) respectively at room temperature, in reasonable agreement with previous studies. We also present some new theoretical results for the recently discovered organic electronic materials, diacene-fused thienothiophenes, for which the charge carrier mobilities are predicted to be around 100 cm(2) V(-1) s(-1).

Graphene research and applicationsMolecular Junctions and NanostructuresThermal properties of materialsGrapheneDelocalized electronCharge carrierElectron mobilityMaterials scienceCondensed matter physicsNanomaterialsPhononCarbon nanotubeElectron
Citations
679
FWCI
7.98
field-weighted impact
References
184
Percentile
98%
vs. same field & year
Citations per year
References
C60: Buckminsterfullerene
Nature · 1985 · 15,775 citations
Studies of polaron motion
Annals of Physics · 1959 · 2,761 citations
Architecture of graphdiyne nanoscale films
Chemical Communications · 2010 · 2,763 citations
Screening Effect and Impurity Scattering in Monolayer Graphene
Journal of the Physical Society of Japan · 2006 · 820 citations
From ultrasoft pseudopotentials to the projector augmented-wave method
Physical review. B, Condensed matter · 1999 · 81,446 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.