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教授

博士生导师

硕士生导师

主要任职:Professor

性别:男

毕业院校:奥地利University of Graz

学位:博士

所在单位:环境学院

学科:环境工程. 环境科学. 水科学与技术

办公地点:大连理工大学环境学院

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Hierarchically porous silicon with significantly improved photocatalytic oxidation capability for phenol degradation

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论文类型:期刊论文

发表时间:2013-07-17

发表刊物:APPLIED CATALYSIS B-ENVIRONMENTAL

收录刊物:EI、SCIE

卷号:138

页面范围:427-433

ISSN号:0926-3373

关键字:Porous silicon; Quantum confinement effect; Photocatalytic oxidation; Stability

摘要:In this work, hierarchically porous silicon was fabricated through electro-assisted chemical etching using a silicon wafer as a substrate. Pores with an average diameter of ca. 1200 nm (macropores) were observed and a large number of nanopores with a diameter of less than 5 nm were uniformly distributed over the surface of the macropore, forming the hierarchically porous silicon with nanopores in macropores structure (NP-MPSi). UV-vis diffuse reflection measurements indicated that NP-MPSi has a bandgap of 2.12 eV, which is 1.0 eV higher than that of the original silicon wafer because of the quantum confinement effect caused by the nanopores. Mott-Schottky experiments further demonstrated that the increase in bandgap of NP-MPSi arises from a positive shift of the valence band potential, which improves its capability for photocatalytic oxidation. NP-MPSi exhibited higher photoelectrochemical stability than macroporous silicon (MPSi), a comparison sample lacking nanopores. Using phenol as an example, photocatalytic experiments under irradiation with a Xe lamp demonstrated that the kinetic constants of phenol degradation and total organic carbon removal using NP-MPSi were nearly 3.5 and 8.0 times larger, respectively, than those using MPSi. This unique porous silicon material is therefore an attractive photocatalyst for environmental applications. (c) 2013 Elsevier B.V. All rights reserved.