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Nonvolatile infrared memory in MoS 2 /PbS van der Waals heterostructures
Author(s) -
Qisheng Wang,
Yao Wen,
Kaiming Cai,
Ruiqing Cheng,
Lei Yin,
Yu Zhang,
Jie Li,
Zhenxing Wang,
Feng Wang,
Fengmei Wang,
Tofik Ahmed Shifa,
Chao Jiang,
Hyunsoo Yang,
Jun He
Publication year - 2018
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aap7916
Subject(s) - non volatile memory , infrared , van der waals force , heterojunction , optoelectronics , materials science , nanotechnology , physics , optics , molecule , quantum mechanics
Optoelectronic devices for information storage and processing are at the heart of optical communication technology due to their significant applications in optical recording and computing. The infrared radiations of 850, 1310, and 1550 nm with low energy dissipation in optical fibers are typical optical communication wavebands. However, optoelectronic devices that could convert and store the infrared data into electrical signals, thereby enabling optical data communications, have not yet been realized. We report an infrared memory device using MoS/PbS van der Waals heterostructures, in which the infrared pulse intrigues a persistent resistance state that hardly relaxes within our experimental time scales (more than 10 s). The device fully retrieves the memory state even after powering off for 3 hours, indicating its potential for nonvolatile storage devices. Furthermore, the device presents a reconfigurable switch of 2000 stable cycles. Supported by a theoretical model with quantitative analysis, we propose that the optical memory and the electrical erasing phenomenon, respectively, originate from the localization of infrared-induced holes in PbS and gate voltage pulse-enhanced tunneling of electrons from MoS to PbS. The demonstrated MoS heterostructure-based memory devices open up an exciting field for optoelectronic infrared memory and programmable logic devices.

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