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Title: Efficient hole transfer from monolayer WS2 to ultrathin amorphous black phosphorus
Authors: Bellus, MZ
Yang, Z 
Zereshki, P
Hao, J 
Lau, SP 
Zhao, H
Issue Date: 1-Jan-2019
Source: Nanoscale horizons, 1 Jan. 2019, v. 4, no. 1, p. 236-242
Abstract: The newly developed van der Waals materials allow fabrication of multilayer heterostructures. Early efforts have mostly focused on heterostructures formed by similar materials. More recently, however, attempts have been made to expand the types of materials, such as topological insulators and organic semiconductors. Here we introduce an amorphous semiconductor to the material library for constructing van der Waals heterostructures. Samples composed of 2 nm amorphous black phosphorus synthesized by pulsed laser deposition and monolayer WS 2 obtained by mechanical exfoliation were fabricated by dry transfer. Photoluminescence measurements revealed that photocarriers excited in WS 2 of the heterostructure transfer to amorphous black phosphorus, in the form of either energy or charge transfer, on a time scale shorter than the exciton lifetime in WS 2 . Transient absorption measurements further indicate that holes can efficiently transfer from WS 2 to amorphous black phosphorus. However, interlayer electron transfer in either direction was found to be absent. The lack of electron transfer from amorphous black phosphorus to WS 2 is attributed to the localized electronic states in the amorphous semiconductor. Furthermore, we show that a hexagonal BN bilayer can effectively change the hole transfer process.
Publisher: Royal Society of Chemistry
Journal: Nanoscale horizons 
ISSN: 2055-6756
EISSN: 2055-6764
DOI: 10.1039/c8nh00234g
Rights: This journal is © The Royal Society of Chemistry 2019
The following publication Bellus, M. Z., Yang, Z., Zereshki, P., Hao, J., Lau, S. P., & Zhao, H. (2019). Efficient hole transfer from monolayer WS 2 to ultrathin amorphous black phosphorus. Nanoscale Horizons, 4(1), 236-242 is available at https://doi.org/10.1039/c8nh00234g
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