TY - JOUR
T1 - Ultrafast formation of interlayer hot excitons in atomically thin MoS2 /WS2 heterostructures
AU - Chen, Hailong
AU - Wen, Xiewen
AU - Zhang, Jing
AU - Wu, Tianmin
AU - Gong, Yongji
AU - Zhang, Xiang
AU - Yuan, Jiangtan
AU - Yi, Chongyue
AU - Lou, Jun
AU - Ajayan, Pulickel M.
AU - Zhuang, Wei
AU - Zhang, Guangyu
AU - Zheng, Junrong
PY - 2016
Y1 - 2016
N2 - Van der Waals heterostructures composed of two-dimensional transition-metal dichalcogenides layers have recently emerged as a new family of materials, with great potential for atomically thin opto-electronic and photovoltaic applications. It is puzzling, however, that the photocurrent is yielded so efficiently in these structures, despite the apparent momentum mismatch between the intralayer/interlayer excitons during the charge transfer, as well as the tightly bound nature of the excitons in 2D geometry. Using the energy-state-resolved ultrafast visible/infrared microspectroscopy, we herein obtain unambiguous experimental evidence of the charge transfer intermediate state with excess energy, during the transition from an intralayer exciton to an interlayer exciton at the interface of a WS 2 /MoS 2 heterostructure, and free carriers moving across the interface much faster than recombining into the intralayer excitons. The observations therefore explain how the remarkable charge transfer rate and photocurrent generation are achieved even with the aforementioned momentum mismatch and excitonic localization in 2D heterostructures and devices.
AB - Van der Waals heterostructures composed of two-dimensional transition-metal dichalcogenides layers have recently emerged as a new family of materials, with great potential for atomically thin opto-electronic and photovoltaic applications. It is puzzling, however, that the photocurrent is yielded so efficiently in these structures, despite the apparent momentum mismatch between the intralayer/interlayer excitons during the charge transfer, as well as the tightly bound nature of the excitons in 2D geometry. Using the energy-state-resolved ultrafast visible/infrared microspectroscopy, we herein obtain unambiguous experimental evidence of the charge transfer intermediate state with excess energy, during the transition from an intralayer exciton to an interlayer exciton at the interface of a WS 2 /MoS 2 heterostructure, and free carriers moving across the interface much faster than recombining into the intralayer excitons. The observations therefore explain how the remarkable charge transfer rate and photocurrent generation are achieved even with the aforementioned momentum mismatch and excitonic localization in 2D heterostructures and devices.
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U2 - 10.1038/ncomms12512
DO - 10.1038/ncomms12512
M3 - RGC 21 - Publication in refereed journal
C2 - 27539942
SN - 2041-1723
VL - 7
JO - Nature Communications
JF - Nature Communications
M1 - 12512
ER -