Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials, Guangdong Engineering Technology Research Center of Efficient Green Energy and Environment Protection Materials, School of Physics and Telecommunication Engineering, South China Normal University, Guangzhou, 510006, P. R. China.
Guangdong-Hong Kong Joint Laboratory of Quantum Matter, Frontier Research Institute for Physics, South China Normal University, Guangzhou, 510006, China.
Small. 2021 Jul;17(30):e2100490. doi: 10.1002/smll.202100490. Epub 2021 Jun 23.
Solar-assisted electrochemical desalination has offered a new energy-water nexus technology for sustainable development in recent studies. However, only a few reports have demonstrated insufficient photocurrent, a low salt removal rate, and poor stability. In this study, a high-quality freshwater level of 5-10 ppm (from an initial feed of 10 000 ppm), an enhanced salt removal rate (217.8 µg cm min of NaCl), and improved cycling and long-term stability are achieved by integrating dye-sensitized solar cells (DSSCs) and redox-flow desalination (RFD) under light irradiation without additional electrical energy consumption. The DSSC redox electrolyte (I /I ) is circulated between the photoanode (N719/TiO ) and intermediate electrode (graphite paper). Two DSSCs in parallel or series connections are directly coupled to the RFD device. Overall, this hybrid system can be used to boost photo electrochemical desalination technology. The energy-water nexus technology will open a new route for dual-role devices with photodesalination functions without energy consumption and solar-to-electricity generation.
太阳能辅助电化学脱盐在最近的研究中为可持续发展提供了一种新的能源-水纽带技术。然而,只有少数报道展示了不足的光电流、低的盐去除率和较差的稳定性。在这项研究中,通过在光照下集成染料敏化太阳能电池 (DSSC) 和氧化还原流脱盐 (RFD),无需额外的电能消耗,实现了高质量的淡水水平(从初始进料 10000ppm 达到 5-10ppm)、增强的盐去除率(NaCl 为 217.8µg cm min),以及循环和长期稳定性的提高。DSSC 氧化还原电解质 (I /I ) 在光电阳极 (N719/TiO ) 和中间电极(石墨纸)之间循环。两个 DSSC 以并联或串联连接直接耦合到 RFD 装置。总的来说,这种混合系统可以用于提升光电化学脱盐技术。能源-水纽带技术将为具有光脱盐功能的双角色设备开辟一条新的途径,而无需消耗能源和太阳能发电。