Engineering PapersSearch

DOE OSTI · 2583990

Discrepancies between Theory and Experiment in Determining the Ionization Energy of NF 3

Abstract

High-accuracy ab initio thermochemical predictions for the ionization energy of NF 3 , the barrier height (to inversion) of NF 3 + , and the dissociative ionization threshold of NF 3 to NF 2 + + F are presented and incorporated into Active Thermochemical Tables. The adiabatic ionization energy of the first ionization band of NF 3 , calculated at 12.647 ± 0.010 eV, is at odds with previous experimental interpretations by nearly 0.36 eV due to unfavorable Franck-Condon factors associated with this transition. The barrier (to inversion) height is calculated to be about 0.6 eV lower in energy than the prior interpretation, which instigates a discussion of the supposed vibrational structure of the first ionization band of NF 3 . Updated assignments of the photoelectron spectrum are proposed, and the loss in vibrational spacing on the high-energy side of the experimental ionization band is discussed. Rudimentary anharmonic Franck-Condon simulations qualitatively reproduce the broad spectral features observed in experiment.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Bentley, Megan R. [University of Florida, Gainesville, FL (United States)] (ORCID:0009000767110051), Franke, Peter R. [University of Florida, Gainesville, FL (United States)], Weflen, Kaila E. [University of Florida, Gainesville, FL (United States)], Bross, David H. [Argonne National Laboratory (ANL), Argonne, IL (United States)] (ORCID:0000000282180249), Ruscic, Branko [Argonne National Laboratory (ANL), Argonne, IL (United States)] (ORCID:0000000243726990), Stanton, John F. [University of Florida, Gainesville, FL (United States)] (ORCID:0000000323459781). 2025-04-04. Discrepancies between Theory and Experiment in Determining the Ionization Energy of NF 3. https://doi.org/10.1021/acs.jpca.5c00613

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related reports

Accurate and reliable thermochemistry by data analysis of complex thermochemical networks using Active Thermochemical Tables: the case of glycine thermochemistry

Active Thermochemical Tables (ATcT) were successfully used to resolve the existing inconsistencies related to the thermochemistry of glycine, based on statistically analyzing and solving a thermochemical network that includes >3350 chemical species interconnected by nearly 35 000 thermochemically-relevant determinations from experiment and high-level theory. Here, the current ATcT results for the 298.15 K enthalpies of formation are −394.70 ± 0.55 kJ mol −1 for gas phase glycine, −528.37 ± 0.20 kJ mol −1 for solid α-glycine, −528.05 ± 0.22 kJ mol −1 for β-glycine, −528.64 ± 0.23 kJ mol −1 for γ-glycine, −514.22 ± 0.20 kJ mol −1 for aqueous undissociated glycine, and −470.09 ± 0.20 kJ mol −1 for fully dissociated aqueous glycine at infinite dilution. In addition, a new set of thermophysical properties of gas phase glycine was obtained from a fully corrected nonrigid rotor anharmonic oscillator (NRRAO) partition function, which includes all conformers. Corresponding sets of thermophysical properties of α-, β-, and γ-glycine are also presented.

Active Thermochemical Tables