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Updated: Jan 31, 2026

Ammonia Synthesis at Low Pressure
Published on: August 23, 2017
Isopotential Electron Titration of Ammonia Charge Transfer on Metal Catalysts
Jesse R Canavan1,2, Rajat Daga1,2, Ulrick R Gaillard1,2
1Center for Programmable Energy Catalysis, University of Minnesota, 421 Washington Avenue SE, Minneapolis, Minnesota 55455, United States.
Abstract:
Electron transfer between adsorbates and surfaces determines the binding strength and reactivity of chemical moieties on materials designed for separations and catalysis. To quantify electron exchange, the extent of charge transfer resulting from ammonia adsorption on a Ru surface was measured by isopotential electron titration (IET) on a Ru catalytic condenser, where isopotential conditions were maintained between Ru and silicon separated by an insulating HfO2 layer during gas phase ammonia adsorption. Charge transfer upon ammonia adsorption on a Ru catalytic condenser increased from 40 to 1200 nC/cm2 at 75 and 225 °C, respectively. Charge transfer measurements provided a direct estimate of ammonia adsorption thermodynamics on Ru without knowing surface coverages a priori, revealing an adsorption enthalpy of -53 ± 10 kJ/mol and entropy of -61 ± 26 J/mol·K. Combining experimentally-measured charge transfer with kinetic Monte Carlo simulations informed adsorbate surface coverages determined that 0.058 electrons were transferred to the Ru surface for each molecular ammonia adsorption event (δNH3 = 0.058 ± 0.005 e-/NH3 *), consistent with calculated Bader charges. The ability to measure the extent of charge transfer for adsorbed species provides a fundamental descriptor to understand existing and new chemically functional surfaces, providing a foundational method for the emerging field of thermochemical surface coulometry.
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