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Effects of Organic Molecules with Different Structures and Absorption Bandwidth on Modulating Photoresponse of MoS2 Photodetector

机译:不同结构和吸收带宽的有机分子对MoS2光电探测器调制光响应的影响

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Organic dye molecules possessing modulated optical absorption bandwidth and molecular structures can be utilized as sensitizing species for the enhancement of photodetector performance of semiconductor via photoinduced charge transfer mechanism. MoS2 photodetector were modified by drop-casting of methyl orange (MO), rhodamine 6G (R6G), and methylene blue (MB) with different molecular structures and extinction coefficients, and enhanced photodetector performance in terms of photocurrent, photoresponsity, photodetectivity, and external quantum efficiency were obtained after modification of MO, R6G, and MB, respectively. Furthermore, dyes showed different modulating abilities for photodetector performance after combination with MoS2, mainly due to the variation of molecular structures and optical absorption bandwidth. Among tested dyes, deposition of MB onto monolayer MoS2 grown by CVD resulted in photocurrent similar to 20 times as high as pristine MoS2 due to favorable photoinduced charge transfer of photoexcited electrons from flat MB molecules to the MoS2 layer. Meanwhile, the corresponding photoresponsivity, photodetectivity, and an external quantum efficiency are 9.09 AW(1-), 2.2 X 10(11) Jones, 1729% at 610 nm, respectively. Photoinduced electron-transfer measurements of the pristine MoS2 and dye-modified MoS2 indicated the n-doping effect of dye molecules on the MoS2. Additionally, surface-enhanced Raman measurements also confirmed the direct correlation with charge transfer between organic dyes and MoS2 taking into account the chemically enhanced Raman scattering mechanism. Present work provides a new clue for the manipulation of high-performance of two-dimensional layered semiconductor-based photodetector via the combination of organic dyes.
机译:具有调制的光吸收带宽和分子结构的有机染料分子可以用作敏化物质,以通过光致电荷转移机制增强半导体的光检测器性能。通过滴铸具有不同分子结构和消光系数的甲基橙(MO),若丹明6G(R6G)和亚甲基蓝(MB)来修饰MoS2光电探测器,并在光电流,光响应,光电探测和外部方面增强了光电探测器的性能分别通过修饰MO,R6G和MB获得量子效率。此外,染料与MoS2结合后对光电探测器的性能表现出不同的调节能力,这主要是由于分子结构和光吸收带宽的变化。在测试的染料中,由于将光激发电子从平坦MB分子转移到MoS2层上,光诱导电荷的有利转移,MB沉积在通过CVD生长的单层MoS2上产生的光电流约为原始MoS2的20倍。同时,相应的光响应性,光探测性和外部量子效率分别为9.09 AW(1-),2.2 X 10(11)Jones,在610 nm处为1729%。原始MoS2和染料修饰的MoS2的光诱导电子转移测量表明,染料分子对MoS2具有正掺杂作用。此外,考虑到化学增强的拉曼散射机理,表面增强拉曼测量还证实了与有机染料和MoS2之间电荷转移的直接相关性。目前的工作为通过有机染料的组合操纵二维层状基于半导体的高性能光电探测器提供了新的线索。

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