4.8 Article

CuInS2 quantum dots anchored onto the three-dimensional flexible self-supporting graphene oxide array with regulatable crystallinity and defect density for efficient photocatalytic synthesis of xylonic acid

期刊

APPLIED CATALYSIS B-ENVIRONMENTAL
卷 316, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.apcatb.2022.121573

关键词

Photocatalytic biorefinery; Xylonic acid; I-III-VI quantum dots; Graphene oxide; CuInS2 quantum dots

资金

  1. Foundation of National Natural Science Foundation of China [22008018]
  2. NSFC-CONICFT Joint Project [51961125207]
  3. China Postdoctoral Science Foundation [2020M670716]
  4. Liaoning Province Xingliao Talent Plan Outstanding Talent Project [XLYC1901004]
  5. Natural Science Foundation of Liaoning Province [2020-MS-272]
  6. Innovation Support Program for High-level Talents of Dalian (Top and Leading Talents) [201913]
  7. Foundation of Guangxi Key Laboratory of Clean Pulp & Papermaking and Pollution Control, College of Light Industry and Food Engineering, Guangxi University [2021KF08]
  8. Dalian City Outstanding Talent Project [2019RD13]
  9. Start-up Fund for Doctoral Research of Dalian Polytechnic University [2020-07]
  10. Foundation of State Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology, Shandong Academy of Sciences [KF201914]
  11. Foundation of Key Laboratory of State Forestry and Grassland Administration for Plant Fiber Functional Materials [2020KFJJ06]

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Efficient photocatalysts using I-III-VI quantum dots and graphene oxide have been developed to achieve high xylonic acid yields. The photocatalytic performance can be adjusted by modulating crystallinity and defect density.
Photocatalytic biorefinery is receiving increasing attention as a promising approach for biomass utilization. In this field, I-III-VI quantum dots have emerged as efficient photocatalysts with unique physical and chemical properties that stem from their quantum and size effects. To fully exploit the advantages of quantum dots, a three-dimensional flexible self-supporting material (CIS@FSM) is fabricated with the assistance of defect-rich graphene oxide (GO), which is employed as a supporter to trap the quantum dots and promote charge separation/migration. Under visible-light irradiation, a xylonic acid yield of 65.05 % is obtained and no obvious decline of the photocatalytic performance is observed after nine runs. Moreover, the photocatalytic performance of CIS@FSM can be tuned by modulating the crystallinity and defect density. The investigation of the mechanism of the xylonic acid production reveals the presence of all oxidation active species, with h+ playing the primary role. This work provides insights for semiconductor-based photocatalytic biorefinery.

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