Room-Temperature Trimethylamine Sensing of Spinel High-Entropy Oxide (FeCoCuCrMn)3O4 via Ultrafast Joule Heating
Huiyu Lu1, Xinyu Meng1, Jiarui Qi1
1College of Physics & Materials Science, Tianjin Normal University, Tianjin300387, People's Republic of China.
Abstract:
Revealing the interaction between sensing materials and gas molecules from the perspective of electronic orbital configuration is key to unlocking the selectivity origin of gas sensing. Herein, the single-phase spinel high-entropy oxide (HEO), (FeCoCuCrMn)3O4, has been synthesized via ultrafast Joule heating and exhibits high trimethylamine gas selectivity and sensing response at room temperature. Such gas-sensing dynamics originate from the fact that the eg sub-orbitals of Fe3+ 3d orbitals are highly matched with lone-pair electron orbitals of trimethylamine N atoms, enabling efficient hybridization to form stable Fe-N coordination bonds and constructing the atomic basis for high gas selectivity of (FeCoCuCrMn)3O4 toward trimethylamine. The appropriate lattice distortion induced by the ultrafast Joule heating strengthens orbital matching/hybridization, enhances trimethylamine molecule adsorption, and boosts electron transfer. The density functional theory (DFT) calculation of adsorption energy on Fe active sites, charge-density difference, and density of states validates the strong adsorption interaction and electron transfer of trimethylamine on (FeCoCuCrMn)3O4 surfaces. This study provides profound atomic-level insights into trimethylamine gas-sensing selectivity of HEOs.


