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Charge Mobility and Recombination Mechanisms in Tellurium van der Waals Solid
Author(s) -
Prashant Bhaskar,
Alexander W. Achtstein,
M. J. W. Vermeulen,
Laurens D. A. Siebbeles
Publication year - 2018
Publication title -
the journal of physical chemistry c
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.401
H-Index - 289
eISSN - 1932-7455
pISSN - 1932-7447
DOI - 10.1021/acs.jpcc.8b09665
Subject(s) - tellurium , van der waals force , electron , electron mobility , semiconductor , atomic physics , charge carrier , band gap , exfoliation joint , materials science , chemistry , condensed matter physics , molecular physics , optoelectronics , graphene , physics , nanotechnology , organic chemistry , quantum mechanics , molecule , metallurgy
Trigonal tellurium is a small band gap elemental semiconductor consisting of van der Waals bound one-dimensional helical chains of tellurium atoms. We study the temperature dependence of the charge carrier mobility and recombination pathways in bulk tellurium. Electrons and holes are generated by irradiation of the sample with 3 MeV electrons and detected by time-resolved microwave conductivity measurements. A theoretical model is used to explain the experimental observations for different charge densities and temperatures. Our analysis reveals a high room temperature mobility of 190 ± 20 cm 2 V -1 s -1 . The mobility is thermally deactivated, suggesting a band-like transport mechanism. According to our analysis, the charges predominantly recombine via radiative recombination with a radiative yield close to 98%, even at room temperature. The remaining charges recombine by either trap-assisted (Shockley-Read-Hall) recombination or undergo trapping to deep traps. The high mobility, near-unity radiative yield, and possibility of large-scale production of atomic wires by liquid exfoliation make Te of high potential for next-generation nanoelectronic and optoelectronic applications, including far-infrared detectors and lasers.

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