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CVD 生长的 MoS/graphene 范德华固体中堆积序列依赖的光电催化性能。

Stacking sequence dependent photo-electrocatalytic performance of CVD grown MoS/graphene van der Waals solids.

机构信息

TIFR-Center for Interdisciplinary Sciences (TCIS), Tata Institute of Fundamental Research, 21 Brundavan Colony, Narsingi, Hyderabad-500075, India.

出版信息

Nanotechnology. 2017 Feb 24;28(8):085101. doi: 10.1088/1361-6528/aa565a. Epub 2017 Jan 23.

Abstract

New layered solids by the combinatorial stacking of different atomic layers are emanating as novel candidates for energy efficient devices. Here, sequentially stacked single layer graphene-molybdenum disulfide (MoS) van der Waals (vdW) solids are demonstrated for their efficacy in the catalysis of hydrogen evolution reaction (HER), and importance of their stacking order in tuning the photo-electrocatalytic (PEC) efficiency is unraveled. Single layer graphene and a few layered MoS stacked vdW solids based transparent flexible electrodes were prepared, and a particular stacking sequence where top-graphene: bottom-MoS/polydimethylsiloxane (PDMS) geometry (MSGR) exhibited the lowest onset and over potentials and a very high exchange current density (j  ∼ 245 ± 1 μA cm) in acidic HER in comparison to the individual layers and other stacked configuration (MoS on top of graphene on PDMS, GRMS). The HER studies under dark and white light illuminations were conducted to explore the PEC responses of the devices. The augmented HER performance of MSGR is further confirmed from the charge transfer resistance measurements using electrochemical impedance spectroscopy. Role of graphene plasmonics and MoS to graphene electron transfer were studied, and this study unravels the importance of a new factor, stacking order of vdW layers, while designing novel devices from the layered solids.

摘要

通过组合堆叠不同原子层,新型分层固体作为高效能器件的候选材料不断涌现。在这里,我们展示了顺序堆叠的单层石墨烯-二硫化钼(MoS)范德华(vdW)固体在催化析氢反应(HER)方面的功效,以及其堆叠顺序在调整光电催化(PEC)效率方面的重要性。我们制备了基于单层石墨烯和少数层 MoS 堆叠的 vdW 固体的透明柔性电极,并研究了一种特殊的堆叠顺序,即顶层为石墨烯、底层为 MoS/聚二甲基硅氧烷(PDMS)的结构(MSGR),与单层和其他堆叠结构(MoS 位于 PDMS 上的石墨烯上,GRMS)相比,在酸性 HER 中具有更低的起始和过电位,以及非常高的交换电流密度(j∼245±1μA cm)。我们进行了黑暗和白光照射下的 HER 研究,以探索器件的 PEC 响应。通过电化学阻抗谱的电荷转移电阻测量进一步证实了 MSGR 的增强 HER 性能。我们研究了石墨烯等离子体和 MoS 向石墨烯的电子转移的作用,这项研究揭示了在设计新型器件时,vdW 层堆叠顺序这一新因素的重要性。

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