Wang Zhiwei, Wang Xiang, Chen Qian, Wang Xiaoshan, Huang Xiao, Huang Wei
Frontiers Science Center for Flexible Electronics, Xi'an Institute of Flexible Electronics (IFE) and Xi'an Institute of Biomedical Materials & Engineering, Northwestern Polytechnical University, 127 West Youyi Road, Xi'an 710072, China.
Institute of Advanced Materials (IAM), Nanjing Tech University (Nanjing Tech), 30 South Puzhu Road, Nanjing 211816, China.
Nanoscale. 2021 Mar 18;13(10):5489-5496. doi: 10.1039/d0nr08415h.
The spatial arrangement of heterostructures based on two-dimensional layered materials is important in controlling their electronic and optoelectronic properties. In this contribution, by controlling the reaction kinetics and thus the nucleation and growth sequence of p-type SnS and metallic NbS2, controllable preparation of both SnS@NbS2 core@shell and SnS/NbS2 lateral heterostructures was realized. The SnS@NbS2 core@shell heterostructures were further applied in photodetectors, and interestingly, a negative photoresponse was observed due to the Seebeck effect exerted on the NbS2 shell. Compared with the pure metallic NbS2, the SnS@NbS2 core@shell heterostructures showed a 15 times increased signal-to-noise ratio and much improved photocurrent stability, largely due to the charge and heat transfer between the SnS core and NbS2 shell.
基于二维层状材料的异质结构的空间排列对于控制其电子和光电特性至关重要。在本研究中,通过控制反应动力学以及p型SnS和金属NbS2的成核和生长顺序,实现了SnS@NbS2核壳结构和SnS/NbS2横向异质结构的可控制备。SnS@NbS2核壳异质结构进一步应用于光电探测器,有趣的是,由于NbS2壳层上的塞贝克效应,观察到了负光响应。与纯金属NbS2相比,SnS@NbS2核壳异质结构的信噪比提高了15倍,光电流稳定性也有了很大改善,这主要归因于SnS核与NbS2壳层之间的电荷和热传递。