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新型金属掺杂碳量子点/CdS 复合材料用于高效光催化析氢。

Novel metal doped carbon quantum dots/CdS composites for efficient photocatalytic hydrogen evolution.

机构信息

State Key Laboratory of Heavy Oil Processing, China University of Petroleum, Beijing, Beijing 102249, People's Republic of China.

出版信息

Nanoscale. 2019 Jan 23;11(4):1618-1625. doi: 10.1039/c8nr05807e.

Abstract

Carbon quantum dots (CDs) are rising stars for photocatalytic applications due to their low toxicity and excellent electron transfer characteristics. Doping with heteroatoms is expected to adjust the band levels and electron transfer properties of CDs, and understanding the effect of doping on CDs can aid the rational preparation of highly efficient CD-based photocatalysts. Herein, we prepared a series of metal atom (Zn, Co, Bi, Cd, or Ti) doped CDs by pyrolysis and explored the photocatalytic application of these metal doped CDs for the first time. The metal doped CDs were combined with CdS nanowires as a co-catalyst for photocatalytic hydrogen production. The Bi, Cd and Ti doped CDs/CdS composites show much better hydrogen production performance than the undoped CDs/CdS composite. Among these composites, Bi-CDs/CdS presents the optimal interfacial charge separation and the best hydrogen production performance. The hydrogen evolution rate of Bi-CDs/CdS is 4.2 times and almost one time higher than that of pure CdS and undoped CDs/CdS, respectively. Bi doping can make the CDs metallic and promote the charge transfer of CDs. Such a great enhancement originates from the outstanding electron transfer properties of Bi-doped CDs, as well as the effective charge separation between Bi-doped CDs and CdS. Bi doping was demonstrated to be an effective strategy for optimizing the photocatalytic activity of CD based composites.

摘要

碳量子点 (CDs) 因其低毒性和优异的电子转移特性而成为光催化应用的后起之秀。掺杂杂原子有望调节 CDs 的能带水平和电子转移特性,了解掺杂对 CDs 的影响有助于合理制备高效的基于 CDs 的光催化剂。在此,我们通过热解制备了一系列金属原子(Zn、Co、Bi、Cd 或 Ti)掺杂的 CDs,并首次探索了这些金属掺杂 CDs 的光催化应用。将金属掺杂 CDs 与 CdS 纳米线结合作为共催化剂用于光催化产氢。与未掺杂 CDs/CdS 复合材料相比,Bi、Cd 和 Ti 掺杂 CDs/CdS 复合材料表现出更好的产氢性能。在这些复合材料中,Bi-CDs/CdS 具有最佳的界面电荷分离和最佳的产氢性能。Bi-CDs/CdS 的产氢速率分别是纯 CdS 和未掺杂 CDs/CdS 的 4.2 倍和 1 倍。Bi 掺杂使 CDs 具有金属性并促进 CDs 的电荷转移。这种巨大的增强源于 Bi 掺杂 CDs 的出色电子转移特性,以及 Bi 掺杂 CDs 和 CdS 之间的有效电荷分离。Bi 掺杂被证明是优化基于 CDs 的复合材料光催化活性的有效策略。

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