| [1] | Yu B., Duan J., Cong H., et al. (2020). Thermosensitive crystallization-boosted liquid thermocells for low-grade heat harvesting. Science 370:342−346. DOI:10.1126/science.abd6749 |
| [2] | Li X., Wu A., Li J., et al. (2023). Anion effects on thermopower of electrochemical systems for low-grade heat harvesting. ACS Energy Letters:4061-4068. DOI:10.1021/acsenergylett.3c01406 |
| [3] | Mu K., Mu Y., Wang X., et al. (2022). Direct thermal charging cell using nickel hexacyanoferrate (ΙΙ) anode for green recycling of low-grade heat. ACS Energy Letters 7:1146−1153. DOI:10.1021/acsenergylett.2c00057 |
| [4] | Shi Y., Yang T., Ma Q., et al. (2025). A thermally regenerative battery with sulfur electrodes realizing efficient thermoelectric conversion with low-grade waste heat. Nano Energy 141:111118. DOI:10.1016/j.nanoen.2025.111118 |
| [5] | Duan J., Yu B., Huang L., et al. (2021). Liquid-state thermocells: Opportunities and challenges for low-grade heat harvesting. Joule 5:768-779. DOI:https://doi.org/10.1016/j.joule.2021.02.009 |
| Li X. and Wang R. (2025). A revisit of thermo-electrochemical techniques for low-temperature waste heat recovery. The Innovation Energy 2:100123. https://doi.org/10.59717/j.xinn-energy.2025.100123 |
To request copyright permission to republish or share portions of our works, please visit Copyright Clearance Center's (CCC) Marketplace website at marketplace.copyright.com.
Thermo-electrochemical techniques for low-temperature waste heat recovery