Gong Maogang, Ewing Dan, Casper Matthew, Stramel Alex, Elliot Alan, Wu Judy Z
Department of Physics and Astronomy , University of Kansas , Lawrence , Kansas 66045 , United States.
Department of Energy's National Security Campus , Kansas City , Missouri 64147 , United States.
ACS Appl Mater Interfaces. 2019 May 29;11(21):19286-19293. doi: 10.1021/acsami.9b04250. Epub 2019 May 17.
The optical properties of stoichiometric iron pyrite (FeS) nanocrystals (NCs) are characterized by strong UV-Visible (UV-Vis) absorption within the cutoff while negligible absorption beyond the cutoff in near-infrared and longer wavelengths. Herein, we show this bandgap limitation can be broken through controllable synthesis of nonstoichiometric FeS NCs ( x = 0.01-0.107) to induce localized surface plasmonic resonance (LSPR) absorption beyond the cutoff to short-wave infrared spectrum (SWIR, 1-3 μm) with remarkably enhanced broadband absorption across UV-Vis-SWIR spectra. To illustrate the benefit of the broadband absorption, colloidal LSPR FeS NCs were printed on graphene to form LSPR FeS NCs/graphene heterostructure photodetectors. Extraordinary photoresponsivity in exceeding 4.32 × 10 A/W and figure-of-merit detectivity D* > 7.50 × 10 Jones have been demonstrated in the broadband of UV-Vis-SWIR at room temperature. These FeS NCs/graphene heterostructures are printable and flexible and therefore promising for practical optical and optoelectronic applications.
化学计量比的黄铁矿(FeS)纳米晶体(NCs)的光学性质表现为在截止波长范围内具有强烈的紫外可见(UV-Vis)吸收,而在近红外及更长波长的截止波长之外吸收可忽略不计。在此,我们表明通过可控合成非化学计量比的FeS NCs(x = 0.01 - 0.107)可以突破这种带隙限制,从而在截止波长之外诱导产生局域表面等离子体共振(LSPR)吸收,直至短波红外光谱(SWIR,1 - 3μm),并在紫外-可见-短波红外光谱范围内显著增强宽带吸收。为了说明宽带吸收的优势,将胶体LSPR FeS NCs印刷在石墨烯上,形成LSPR FeS NCs/石墨烯异质结构光电探测器。在室温下,在紫外-可见-短波红外宽带范围内已证明其具有超过4.32×10 A/W的非凡光响应率以及优值探测率D* > 7.50×10琼斯。这些FeS NCs/石墨烯异质结构是可印刷且柔性的,因此在实际光学和光电子应用中具有前景。