Song Xiaohan, Bu Hongxia, Fan Yingcai, Wang Junru, Zhao Mingwen
Shandong Institute of Advanced Technology Jinan Shandong 250100 China.
College of Physics and Electronic Engineering, Qilu Normal University Jinan Shandong 250200 China.
RSC Adv. 2022 Jun 8;12(27):17029-17035. doi: 10.1039/d2ra02349k. eCollection 2022 Jun 7.
As it is a promising clean energy source, the production and storage of hydrogen are crucial techniques. Here, based on first-principles calculations, we proposed an integral strategy for the production and storage of hydrogen in carbon nanotubes photocatalytic processes. We considered a core-shell structure formed by placing a carbon nitride nanowire inside a carbon nanotube to achieve this goal. Photo-generated holes on the carbon nanotube surface promote water splitting. Driven by intrinsic electrostatic field in the core-shell structures, protons produced by water splitting penetrate the carbon nanotube and react with photo-generated electrons on the carbon nitride nanowire to produce hydrogen molecules in the carbon nanotube. Because carbon nanotubes have high hydrogen storage capacity, this core-shell structure can serve as a candidate system for photocatalytic water splitting and safe hydrogen storage.
由于氢能是一种很有前景的清洁能源,氢气的生产和储存是关键技术。在此,基于第一性原理计算,我们提出了一种在碳纳米管光催化过程中生产和储存氢气的整体策略。为实现这一目标,我们考虑了一种通过将氮化碳纳米线置于碳纳米管内部而形成的核壳结构。碳纳米管表面的光生空穴促进水分解。在核壳结构的固有静电场驱动下,水分解产生的质子穿透碳纳米管,并与氮化碳纳米线上的光生电子反应,在碳纳米管中产生氢分子。由于碳纳米管具有高储氢能力,这种核壳结构可作为光催化水分解和安全储氢的候选体系。