Li Xuli, Song Shaojia, Gao Yangqin, Ge Lei, Song Weiyu, Ma Tianyi, Liu Jian
State Key Laboratory of Heavy Oil Processing, College of New Energy and Materials, China University of Petroleum Beijing, Beijing, 102249, China.
College of Science, China University of Petroleum Beijing, Beijing, 102249, China.
Small. 2021 Aug;17(31):e2101315. doi: 10.1002/smll.202101315. Epub 2021 Jun 23.
Water splitting to H by photocatalysis remains an effective strategy to alleviate the energy crisis. Unfortunately, single-component photocatalyst still suffers from sluggish reaction kinetics. In this work, a noble-metal free photocatalytic system of nitrogen-doped carbon@Co embedded in carbon nanotubes (NC@Co-NCT)/cadmium sulfide (CdS) is fabricated by coupling CdS nanorods with the metal-organic framework-derived Co encapsulated nitrogen-doped carbon (NC) material. The optimal photocatalytic activity of NC@Co-NCT/CdS is determined to be 3.8 mmol h g , which is ≈5.8 times of CdS. By combining the experimental evidences and density functional theory calculations, a novel photoelectron transfer channel in the heterojunction interfaces is revealed, expediting the migration and separation of photo-induced charge carriers of CdS. Moreover, the presence of Co nanoclusters can act as the active sites, boosting the H evolution reaction. This study can present a new avenue to design advanced photocatalysts with high-efficiency electrons and holes separation.
通过光催化将水分解为氢气仍然是缓解能源危机的有效策略。不幸的是,单组分光催化剂的反应动力学仍然较为迟缓。在这项工作中,通过将硫化镉纳米棒与金属有机框架衍生的钴封装氮掺杂碳(NC)材料耦合,制备了一种嵌入碳纳米管的氮掺杂碳@钴(NC@Co-NCT)/硫化镉(CdS)的无贵金属光催化体系。NC@Co-NCT/CdS的最佳光催化活性确定为3.8 mmol h g ,约为CdS的5.8倍。通过结合实验证据和密度泛函理论计算,揭示了异质结界面中一种新的光电子转移通道,加速了硫化镉光生载流子的迁移和分离。此外,钴纳米团簇的存在可以作为活性位点,促进析氢反应。这项研究可以为设计具有高效电子和空穴分离的先进光催化剂提供一条新途径。