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Jiang Gong   研究员(自然科学)

截止2025年1月23日,累计发表SCI论文158篇。其中第一作者/通讯作者89篇,包括国际一流期刊Progress in Polymer Science(影响因子26),Advanced Materials(影响因子27.4),Advanced Energy Materials (影响因子24.4),Angewandte Chemie International Edition(影响因子16.1),Chem(影响因子19.1),Applied Catalysis B: Environmental(影响因子20.2,4篇),Chemical Engineering Journal(影响因子13.3,11篇),Jour...Detials

Upcycling poly(ethylene terephthalate) into porous carbon cuboid through MOF-derived carbonization strategy for interfacial solar-driven water-thermoelectricity co-generation

Release time:2023-06-15  Hits:

  • Indexed by:Essay collection
  • First Author:Bingyu Chen
  • Correspondence Author:Ran Niu,Jiang Gong
  • Co-author:Jiaxin Ren,Yuhang Song,Panpan He,Huiying Bai,Zifen Fan
  • Journal:ACS Sustainable Chemistry & Engineering
  • Included Journals:SCI
  • Discipline:Engineering
  • First-Level Discipline:Material Science and Engineering
  • Document Type:J
  • Volume:10
  • Issue:49
  • Page Number:16427–16439
  • DOI number:10.1021/acssuschemeng.2c0
  • Date of Publication:2022-11-24
  • Impact Factor:9.224
  • Abstract:Converting plastics into functional carbonaceous materials for solar energy conversion and storage has emerged as a prospective solution to concurrently advanced waste plastics upcycling and solar energy exploitation. However, synthesizing efficient carbon-based photothermal materials with well-defined shapes from waste plastics remains challenging. Herein, we propose metal–organic framework-derived carbonization strategy to upcycle waste poly(ethylene terephthalate) into a porous carbon cuboid (PCC) for interfacial solar-driven water–thermoelectricity cogeneration. PCC with well-controlled shapes is readily prepared from carbonization of a Ca-metal–organic framework cuboid derived from recycled poly(ethylene terephthalate). The size and porous structure of the PCC are facilely regulated by changing the carbonization temperature (700–900 °C). Owing to abundant hierarchical micro-/meso-/macropores, unique cuboid morphology, and many oxygen-containing groups of the PCC, the PCC-based solar evaporator reveals high light absorptivity, reduced evaporation enthalpy, low heat conductivity, and superior photothermal conversion capability. Thanks to these advantages, it displays an ultra-high evaporation rate (2.49 kg m–2 h–1) under 1 sun illumination, surpassing many recent evaporators. Besides, an outdoor solar-driven desalination apparatus achieves the freshwater generation amount per unit area of 7.1 kg. Significantly, the evaporator combined with a thermoelectric module generates a voltage of 201 mV at the illumination intensity of 1 kW m–2, with a maximum power density of 0.8 W m–2. This work not merely offers new opportunities for sustainable electricity and freshwater supply from renewable solar energy but also contributes to upcycling waste plastics and achieving carbon neutrality.
  • Links to published journals:https://pubs.acs.org/doi/10.1021/acssuschemeng.2c05722