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https://doi.org/10.1002/adma.202006234
Title: | Redox Targeting-Based Thermally Regenerative Electrochemical Cycle Flow Cell for Enhanced Low-Grade Heat Harnessing | Authors: | Zhang, Hang Yu, Juezhi Zhou, Mingyue Luo, Wei Lee, Yann Mei Si, Mayan Wang, Qing |
Keywords: | Science & Technology Physical Sciences Technology Chemistry, Multidisciplinary Chemistry, Physical Nanoscience & Nanotechnology Materials Science, Multidisciplinary Physics, Applied Physics, Condensed Matter Chemistry Science & Technology - Other Topics Materials Science Physics low‐ grade heat harnessing redox flow batteries redox targeting thermally regenerative electrochemical cycles ELECTRODE MATERIALS PERFORMANCE BATTERY THERMOELECTRICS CAPACITY SYSTEM |
Issue Date: | 11-Dec-2020 | Publisher: | WILEY-V C H VERLAG GMBH | Citation: | Zhang, Hang, Yu, Juezhi, Zhou, Mingyue, Luo, Wei, Lee, Yann Mei, Si, Mayan, Wang, Qing (2020-12-11). Redox Targeting-Based Thermally Regenerative Electrochemical Cycle Flow Cell for Enhanced Low-Grade Heat Harnessing. ADVANCED MATERIALS 33 (5). ScholarBank@NUS Repository. https://doi.org/10.1002/adma.202006234 | Abstract: | A large amount of low-grade heat (<100 °C) is produced in electrical devices and mostly wasted. This type of heat without effective dissipation also causes compromised device performance, reliability, and lifespan. To tackle these issues, a redox targeting (RT)-based flow cell with judiciously designed thermoelectrically active redox materials is demonstrated for the first time for efficient heat-to-electricity conversion through a thermally regenerative electrochemical cycle (TREC). Compared with the conventional TREC systems, the RT-based flow cell not only reveals considerably enhanced thermoelectric efficiency, but the flow of redox fluids also provides a cooling function to the system. In this work, solid material Ni Co (OH) and redox mediator [Fe(CN) ] , both of which have negative temperature coefficient and share identical redox potential, are paired via RT-reactions to boost the capacity and meanwhile thermoelectric efficiency of a [Fe(CN) ] /Zn -based flow cell. Upon operating over the TREC cycle, the RT-based flow cell converts heat to electricity at an unprecedented absolute thermoelectric efficiency of 3.61% in the temperature range of 25–55 °C. 0.2 0.8 2 6 6 4−/3− 4−/3− 0/2+ | Source Title: | ADVANCED MATERIALS | URI: | https://scholarbank.nus.edu.sg/handle/10635/191106 | ISSN: | 09359648 15214095 |
DOI: | 10.1002/adma.202006234 |
Appears in Collections: | Elements Staff Publications |
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manuscript_Zhang Hang_23052020.pdf | Accepted version | 2.6 MB | Adobe PDF | OPEN | Post-print | View/Download |
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