4.6 Article

Lotus-Leaf-Derived Activated-Carbon-Supported Nano-CdS as Energy-Efficient Photocatalysts under Visible Irradiation

Journal

ACS SUSTAINABLE CHEMISTRY & ENGINEERING
Volume 6, Issue 6, Pages 7871-7879

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acssuschemeng.8b01021

Keywords

Biomass; Activated carbon; Cadmium sulfide; Composites; Photocatalysis

Funding

  1. National Key Research and Development Program of China [2017YFD0800900]
  2. NSFC [91622114, 21520102001, 21521061, 21331006]
  3. Strategic Priority Research Program of Chinese Academy of Sciences [XDB20000000]
  4. State Key Laboratory of Structural Chemistry [20170032]
  5. New Century Excellent Talents in Fujian Province University
  6. International Science and Technology Cooperation and Exchange Project of Fujian Agriculture and Forestry University [KXGH17010]

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Lotus-leaf-derived activated carbon materials (denoted as LAC-T) were fabricated at different temperatures (T = 600, 700, and 800 degrees C), which resulted in carbonaceous materials with various microstructures and porosity. BET surface area of LAC-T increased from 1184 m(2) g(-1) to 1807 m(2) g(-1) with activation temperatures that varied from 600 degrees C to 800 degrees C. These microporous carbonaceous materials were subsequently advanced as ideal platforms for cadmium sulfide (CdS) composite photo catalysts, through the deposition of nano-CdS precursors on LAC T supports (CdS@LAC-T). It was revealed that the CdS@LAC-T nanocomposites displayed enhanced photocatalytic efficiency, in comparison with the nano-CdS, toward the degradation of various organic dyes under visible light. More specifically, CdS@LAC-800, prepared from a carbonaceous support with the highest BET, gave the best photocatalytic efficiency. Estimated band gap energy for CdS@LAC-800 (2.01 eV) was considerably lower than that of nano-CdS (2.22 eV), which was among the lowest band gap energies observed for CdS photocatalysts. Band-gap narrowing that was observed for nanocomposites indicated noticeable interface interaction between nano-CdS and the carbonaceous supports, and excellent light harvesting ability. Furthermore, the improved photocatalytic activity shown by the best performing CdS@LAC-800 was achieved thanks to the effective production of catalytically active species (h(+), O-2(center dot-), center dot OH, and H2O2), which were demonstrated by means of extensive mechanism study. Overall, the highly ordered and porous carbonaceous support accounted for the outstanding photocatalytic efficiency of CdS@LAC-800 by synergistically boosting the substrate accessibility, the solar energy harvesting efficiency, and the electron-hole separation in this photocatalytic system.

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