| Literature DB >> 26508636 |
Won Jun Jo1, Hyun Joon Kang2, Ki-Jeong Kong3, Yun Seog Lee4, Hunmin Park2, Younghye Lee2, Tonio Buonassisi4, Karen K Gleason1, Jae Sung Lee5.
Abstract
Through phase transition-induced band edge engineering by dual doping with In and Mo, a new greenish BiVO4 (Bi1-XInXV1-XMoXO4) is developed that has a larger band gap energy than the usual yellow scheelite monoclinic BiVO4 as well as a higher (more negative) conduction band than H(+)/H2 potential [0 VRHE (reversible hydrogen electrode) at pH 7]. Hence, it can extract H2 from pure water by visible light-driven overall water splitting without using any sacrificial reagents. The density functional theory calculation indicates that In(3+)/Mo(6+) dual doping triggers partial phase transformation from pure monoclinic BiVO4 to a mixture of monoclinic BiVO4 and tetragonal BiVO4, which sequentially leads to unit cell volume growth, compressive lattice strain increase, conduction band edge uplift, and band gap widening.Entities:
Keywords: band edge engineering; bismuth vanadate; dual doping; photocatalysis; water splitting
Year: 2015 PMID: 26508636 PMCID: PMC4653159 DOI: 10.1073/pnas.1509674112
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205