| Literature DB >> 30602455 |
Nian Liu1,2,3, Guangmin Zhou2, Ankun Yang2, Xiaoyun Yu2, Feifei Shi2, Jie Sun2, Jinsong Zhang2, Bofei Liu2, Chun-Lan Wu2, Xinyong Tao2,4, Yongming Sun2, Yi Cui5,6, Steven Chu1,7.
Abstract
Supercooled liquid sulfur microdroplets were directly generated from polysulfide electrochemical oxidation on various metal-containing electrodes. The sulfur droplets remain liquid at 155 °C below sulfur's melting point (T m = 115 °C), with fractional supercooling change (T m - T sc)/T m larger than 0.40. In operando light microscopy captured the rapid merging and shape relaxation of sulfur droplets, indicating their liquid nature. Micropatterned electrode and electrochemical current allow precise control of the location and size of supercooled microdroplets, respectively. Using this platform, we initiated and observed the rapid solidification of supercooled sulfur microdroplets upon crystalline sulfur touching, which confirms supercooled sulfur's metastability at room temperature. In addition, the formation of liquid sulfur in electrochemical cell enriches lithium-sulfur-electrolyte phase diagram and potentially may create new opportunities for high-energy Li-S batteries.Entities:
Keywords: Li-S batteries; crystallization; in situ optical microscopy; liquid sulfur droplets; supercooled liquids
Year: 2019 PMID: 30602455 PMCID: PMC6338843 DOI: 10.1073/pnas.1817286116
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205