宿艳

个人信息Personal Information

硕士生导师

性别:女

毕业院校:大连理工大学

学位:博士

所在单位:化学学院

学科:分析化学. 无机化学

办公地点:化学楼基础化学实验中心328

联系方式:办公电话:84706313

电子邮箱:susu@dlut.edu.cn

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Fabrication of graphitic-C3N4 quantum dots coated silicon nanowire array as a photoelectrode for vigorous degradation of 4-chlorophenol

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论文类型:期刊论文

发表时间:2017-01-01

发表刊物:RSC ADVANCES

收录刊物:SCIE、EI

卷号:7

期号:24

页面范围:14832-14836

ISSN号:2046-2069

摘要:Although Si is a successful photovoltaic material, its application in the photoelectrochemical (PEC) field is limited because an insulated SiO2 layer always extends quickly from surface to depth once bare Si contacts with an aqueous solution. To inhibit this oxidation passivation, Si nanowires (SiNWs) were coated with graphitic-C3N4 quantum dots (g-C3N4 QDs) to form SiNWs@g-C3N4 QDs, in which g-C3N4 QDs acted as a protection layer to isolate Si from water and to improve the photogenerated charge transfer. Observed by SEM and TEM, it was confirmed that dispersive g-C3N4 QDs anchored on the surface of SiNWs. PEC performance indicated that the photocurrent of bare SiNWs declined obviously while the photocurrent of SiNWs@g-C3N4 QDs was stable. The photocurrent of SiNWs@g-C3N4 QDs reached 6.7 mA cm (2) at - 1.5 V (vs. SCE) which was 1.6 times higher than that of pristine SiNWs (4.2 mA cm (- 2)). Taking 4-chlorophenol as a target pollutant to investigate the photoelectrocatalytic capability of the SiNWs@g-C3N4 QDs, more than 85% of 4-chlorophenol was successfully removed in 120 min, while the value for SiNWs was only 52.0%. The pseudo-first-order kinetic constant of 4-chlorophenol degradation on SiNWs@g-C3N4 QDs was 2.3 times as great as that on pristine SiNWs. The improved degradation efficiency benefited from the improved stability as well as the enhanced photo-generated charge transfer and separation driven by the built-in electric field at the interface between g-C3N4 QDs and SiNWs. The SiNWs@g-C3N4 QDs will also be useful in other research areas such as water splitting, sensors, etc.