Theoretical Rovibrational Spectroscopy of Magnesium Tricarbide–Multireference Character Thwarts a Full Analysis of All Isomers
Publication type: Journal Article
Publication date: 2022-06-27
scimago Q2
wos Q2
SJR: 0.634
CiteScore: 4.8
Impact factor: 2.8
ISSN: 10895639, 15205215
PubMed ID:
35758849
Physical and Theoretical Chemistry
Abstract
Magnesium tricarbide isomers are studied herein with coupled cluster theory and multireference configuration interaction to support their possible detection in astrochemical environments such as the circumstellar envelope surrounding the star IRC +10216 or in terrestrial laboratories. Magnesium-bearing species may abound in the interstellar medium (ISM), but only eight (MgNC, MgCN, HMgNC, MgC2H, MgC3N, MgC4H, MgC5N, and MgC6H) have been directly identified thus far. Several possible isomers for the related MgC3 system are explored in their singlet and triplet spin multiplicities. Overall, this work offers quantum chemical insight of rovibrational spectroscopic data for MgC3 using quartic force fields (QFFs) based on the CCSD(T) and CCSD(T)-F12 levels of theory at the complete basis set (CBS) limit. Additional corrections with small basis set CCSDT(Q) and scalar relativistic effects are also included in the analysis. Salient multireference character is found in the singlet diamond electronic state, which makes a definitive assignment of the ground state challenging. Nevertheless, coupled cluster-based composite energies and multireference configuration interaction both predict that the 1A1 diamond isomer is 1.6-2.2 kcal mol-1 lower in energy than the 3A1 diamond isomer. Furthermore, highly accurate binding energies of various isomers MgC3 are provided for comparison to photodetachment experiments. Dipole moments along with harmonic infrared intensities will guide efforts for astronomical and spectroscopic characterization.
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Total citations:
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Citations from 2024:
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Agbaglo D. A. et al. Theoretical Rovibrational Spectroscopy of Magnesium Tricarbide–Multireference Character Thwarts a Full Analysis of All Isomers // Journal of Physical Chemistry A. 2022. Vol. 126. No. 26. pp. 4132-4146.
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Agbaglo D. A., Cheng Q., Fortenberry R. C., STANTON J. F., Deyonker N. J. Theoretical Rovibrational Spectroscopy of Magnesium Tricarbide–Multireference Character Thwarts a Full Analysis of All Isomers // Journal of Physical Chemistry A. 2022. Vol. 126. No. 26. pp. 4132-4146.
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TY - JOUR
DO - 10.1021/acs.jpca.2c01340
UR - https://doi.org/10.1021/acs.jpca.2c01340
TI - Theoretical Rovibrational Spectroscopy of Magnesium Tricarbide–Multireference Character Thwarts a Full Analysis of All Isomers
T2 - Journal of Physical Chemistry A
AU - Agbaglo, Donatus A
AU - Cheng, Qian-Yi
AU - Fortenberry, Ryan C.
AU - STANTON, John F.
AU - Deyonker, N J
PY - 2022
DA - 2022/06/27
PB - American Chemical Society (ACS)
SP - 4132-4146
IS - 26
VL - 126
PMID - 35758849
SN - 1089-5639
SN - 1520-5215
ER -
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BibTex (up to 50 authors)
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@article{2022_Agbaglo,
author = {Donatus A Agbaglo and Qian-Yi Cheng and Ryan C. Fortenberry and John F. STANTON and N J Deyonker},
title = {Theoretical Rovibrational Spectroscopy of Magnesium Tricarbide–Multireference Character Thwarts a Full Analysis of All Isomers},
journal = {Journal of Physical Chemistry A},
year = {2022},
volume = {126},
publisher = {American Chemical Society (ACS)},
month = {jun},
url = {https://doi.org/10.1021/acs.jpca.2c01340},
number = {26},
pages = {4132--4146},
doi = {10.1021/acs.jpca.2c01340}
}
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Agbaglo, Donatus A., et al. “Theoretical Rovibrational Spectroscopy of Magnesium Tricarbide–Multireference Character Thwarts a Full Analysis of All Isomers.” Journal of Physical Chemistry A, vol. 126, no. 26, Jun. 2022, pp. 4132-4146. https://doi.org/10.1021/acs.jpca.2c01340.