Published January 25, 2023 | Version public
Journal Article

Ultrafast Excited State Aromatization in Dihydroazulene

  • 1. ROR icon Kyungpook National University
  • 2. ROR icon Soonchunhyang University
  • 3. ROR icon Yonsei University
  • 4. ROR icon California Institute of Technology

Abstract

Excited-state aromatization dynamics in the photochemical ring opening of dihydroazulene (DHA) is investigated by nonadiabatic molecular dynamics simulations in connection with the mixed-reference spin-flip (MRSF)-TDDFT method. It is found that, in the main reaction channel, the ring opening occurs in the excited state in a sequence of steps with increasing aromaticity. The first stage lasting ca. 200 fs produces an 8π semiaromatic S1 minimum (S_(1, min)) through an ultrafast damped bond length alternation (BLA) movement synchronized with a partial planarization of the cycloheptatriene ring. An additional ca. 200 fs are required to gain the vibrational energy needed to overcome a ring-opening transition state characterized by an enhanced Baird aromaticity. Unlike other BLA motions of ππ* state, it was shown that their damping is a characteristic feature of aromatic bond-equalization process. In addition, some minor channels of the reaction have also been discovered, where noticeably higher barriers of the S1non/antiaromatic transition structures must be surmounted. These anti-Baird channels led to reformation of DHA or other closed-ring products. The observed competition between the Baird and anti-Baird channels suggests that the quantum yield of photochemical products can be controllable by tipping their balance. Hence, here we suggest including the concept of anti-Baird, which would expand the applicability of Baird rule to much broader situations.

Additional Information

© 2023 American Chemical Society. The authors are highly indebted to Prof. Sarah Yunmi Lee for her advice and arrangements on the sample synthesis. This work was supported by the Samsung Science and Technology Foundations (SSTF-BA1701-12) for the fundamental theory developments, the NRF funded by the Ministry of Science and ICT (2020R1A2C2008246, 2021R1A2C3006308, 2021R1A6A1A03039503 and 2020R1A5A1019141), and the Korean Basic Science Institute (National Research Facilities and Equipment Center) grant (2022R1A6C101B794). The authors declare no competing financial interest.

Additional details

Identifiers

Eprint ID
121154
Resolver ID
CaltechAUTHORS:20230425-487625200.9

Funding

Samsung Science and Technology Foundation
SSTF-BA1701-12
National Research Foundation of Korea
2020R1A2C2008246
National Research Foundation of Korea
2021R1A2C3006308
National Research Foundation of Korea
2021R1A6A1A03039503
National Research Foundation of Korea
2020R1A5A1019141
National Research Foundation of Korea
2022R1A6C101B794

Dates

Created
2023-05-16
Created from EPrint's datestamp field
Updated
2023-05-16
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