Department of Materials Science & Engineering, CAS key Lab of Materials for Energy Conversion, University of Science and Technology of China , Hefei, Anhui 230026, P. R. China.
ACS Nano. 2014 Jul 22;8(7):6979-85. doi: 10.1021/nn501807y. Epub 2014 Jun 9.
Limited control over charge recombination between photogenerated charge carriers largely hinders the progress in photocatalysis. Here, we introduce metal nanoparticles (Cr, Ag) to the surface of MoS2 nanosheets by simple synthetic means creating a hybrid metal-MoS2 nanosheet system with well-defined metal/semiconductor interfaces. We demonstrate that this hybrid nanosheet structure is capable of decoupling light absorption, primarily in MoS2, and carrier separation, across the metal-MoS2 heterostructure leading to drastic quenching of recombination between photogenerated carriers in MoS2, as proven by absorptance, photoluminescence, and ultrafast pump-probe spectroscopy. The photocatalytic activity in the hybrid system is also improved, which further shows excellent stability against photocorrosion.
光生载流子的电荷复合受到限制,在很大程度上阻碍了光催化的发展。在这里,我们通过简单的合成方法将金属纳米粒子(Cr、Ag)引入 MoS2 纳米片中,从而构建了具有明确的金属/半导体界面的金属-MoS2 纳米片混合体系。我们证明,这种混合纳米片结构能够解耦光吸收(主要在 MoS2 中)和载流子分离(跨越金属-MoS2 异质结),从而导致 MoS2 中光生载流子的复合急剧猝灭,这可以通过吸收、光致发光和超快泵浦探测光谱得到证明。在混合体系中,光催化活性也得到了提高,并且还表现出对光腐蚀的优异稳定性。