4.7 Article

Carbon dots decorated cadmium sulphide heterojunction-nanospheres for the enhanced visible light driven photocatalytic dye degradation and hydrogen generation

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 627, Issue -, Pages 956-968

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2022.07.100

Keywords

Carbon dots; Cadmium sulphide; Photocatalysis; Dye degradation; Hydrogen evolution

Funding

  1. Visvesvaraya Technological University under Research Grants Scheme
  2. management of M S Ramaiah Institute ofTechnology for extending the characterization facilities through Centre for Advanced Materials Technology [VTU/BGM/Aca/A-12/VTU RGS/DIS-Chemistry/2021-2 2/5859/2]

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This study demonstrates the rational design and synthesis of cadmium sulphide based heterojunction photocatalysts using carbon dots derived from beetroot. The C-dots@CdS system exhibits superior photocatalytic activity and efficient photodegradation performance for hydrogen evolution and crystal violet dye, respectively. The results indicate the promising potential of bio-derived C-dots based heterojunction photocatalysts in addressing energy and environmental demands.
Carbon dots (C-dots) developed from beetroot is used for the rational design of cadmium sulphide based heterojunction photocatalysts (C-dots@CdS) using hydrothermal technique. The crystal structure, phase, morphology and optical characteristics of the synthesised materials are determined using X-ray diffrac-tion (XRD), High resolution transmission electron microscopy (HR-TEM), Field emission scanning elec-tron microscopy (FESEM), Energy dispersive X-ray analysis (EDAX), Fourier transform infrared spectroscopy (FTIR), Raman spectroscopy, UV-Visible diffuse reflectance spectroscopy (UV-DRS), photo-luminescence spectroscopy (PL spectroscopy), BET adsorption, X-ray photoelectron spectroscopy (XPS) and electrochemical studies. Using C-dots@CdS catalytic system, a superior photocatalytic activity rela-tive to the undecorated CdS is observed. Among the C-dots@CdS samples, the CdS loaded with 6 wt% of C-dots exhibited enhanced hydrogen evolution rate compared with other samples considered for the study. CdS nanospheres modified with C-dots (6 wt%) resulted in the photocatalytic hydrogen evolu-tion rate of 1582 mu molg?1 against 849 mu molg?1 evolution rate obtained for CdS nanospheres within 3 h. In spite of being 0D/0D type nano-heteroarchitecture, C-dots@CdS system obtained an apparent quantum yield of 6.37 % for the catalytic dosage of 20 mg under the irradiation of visible light. CdS in the C-dots@CdS system serves as the light harvester while C-dots with discernible edges can maintain the continuous supply of photo-excited charge carriers and hence can reduce the charge-carrier recombina-tion. Further, the photodegradation of crystal violet dye using the optimised dosage of C-dots@CdS-6 exhibited an efficiency of 97.3 % in 120 min of visible light irradiation under neutral conditions. The detailed kinetic study reveals that the mechanism of photodegradation of crystal violet dye using C-dots@CdS system can be described using pseudo-second-order kinetics. The presence of oxygen rich hydrophilic surface functionalities of C-dots, the formation of near-surface heterojunction and the suit-able band structure of C-dots@CdS system leading to the optimum charge carrier separation kinetics can be attributed to the enhanced photocatalytic performance. This work offers a promising strategy to develop bio-derived C-dots based heterojunction photocatalyst to address the burgeoning energy and environmental demands.(c) 2022 Elsevier Inc. All rights reserved.

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