TY - JOUR
T1 - Multistate Energy Decomposition Analysis of Molecular Excited States
AU - Hettich, Christian P.
AU - Zhang, Xiaoyong
AU - Kemper, David
AU - Zhao, Ruoqi
AU - Zhou, Shaoyuan
AU - Lu, Yangyi
AU - Gao, Jiali
AU - Zhang, Jun
AU - Liu, Meiyi
N1 - Publisher Copyright:
© 2023 The Authors. Published by American Chemical Society.
PY - 2023/7/24
Y1 - 2023/7/24
N2 - A multistate energy decomposition analysis (MS-EDA) method is described to dissect the energy components in molecular complexes in excited states. In MS-EDA, the total binding energy of an excimer or an exciplex is partitioned into a ground-state term, called local interaction energy, and excited-state contributions that include exciton excitation energy, superexchange stabilization, and orbital and configuration-state delocalization. An important feature of MS-EDA is that key intermediate states associated with different energy terms can be variationally optimized, providing quantitative insights into widely used physical concepts such as exciton delocalization and superexchange charge-transfer effects in excited states. By introducing structure-weighted adiabatic excitation energy as the minimum photoexcitation energy needed to produce an excited-state complex, the binding energy of an exciplex and excimer can be defined. On the basis of the nature of intermolecular forces through MS-EDA analysis, it was found that molecular complexes in the excited states can be classified into three main categories, including (1) encounter excited-state complex, (2) charge-transfer exciplex, and (3) intimate excimer or exciplex. The illustrative examples in this Perspective highlight the interplay of local excitation polarization, exciton resonance, and superexchange effects in molecular excited states. It is hoped that MS-EDA can be a useful tool for understanding photochemical and photobiological processes.
AB - A multistate energy decomposition analysis (MS-EDA) method is described to dissect the energy components in molecular complexes in excited states. In MS-EDA, the total binding energy of an excimer or an exciplex is partitioned into a ground-state term, called local interaction energy, and excited-state contributions that include exciton excitation energy, superexchange stabilization, and orbital and configuration-state delocalization. An important feature of MS-EDA is that key intermediate states associated with different energy terms can be variationally optimized, providing quantitative insights into widely used physical concepts such as exciton delocalization and superexchange charge-transfer effects in excited states. By introducing structure-weighted adiabatic excitation energy as the minimum photoexcitation energy needed to produce an excited-state complex, the binding energy of an exciplex and excimer can be defined. On the basis of the nature of intermolecular forces through MS-EDA analysis, it was found that molecular complexes in the excited states can be classified into three main categories, including (1) encounter excited-state complex, (2) charge-transfer exciplex, and (3) intimate excimer or exciplex. The illustrative examples in this Perspective highlight the interplay of local excitation polarization, exciton resonance, and superexchange effects in molecular excited states. It is hoped that MS-EDA can be a useful tool for understanding photochemical and photobiological processes.
KW - MS-EDA
KW - MSDFT
KW - Multistate energy decomposition analysis
KW - charge transfer
KW - excited-state energy components
KW - exciton resonance
KW - superexchange
UR - https://www.scopus.com/pages/publications/85164493293
UR - https://www.scopus.com/pages/publications/85164493293#tab=citedBy
U2 - 10.1021/jacsau.3c00186
DO - 10.1021/jacsau.3c00186
M3 - Review article
C2 - 37502166
AN - SCOPUS:85164493293
SN - 2691-3704
VL - 3
SP - 1800
EP - 1819
JO - JACS Au
JF - JACS Au
IS - 7
ER -