A theoretical study on laser cooling feasibility of XH (X = As, Sb and Bi): effects of intersystem crossings and spin–orbit couplings. Issue 17 (13th April 2022)
- Record Type:
- Journal Article
- Title:
- A theoretical study on laser cooling feasibility of XH (X = As, Sb and Bi): effects of intersystem crossings and spin–orbit couplings. Issue 17 (13th April 2022)
- Main Title:
- A theoretical study on laser cooling feasibility of XH (X = As, Sb and Bi): effects of intersystem crossings and spin–orbit couplings
- Authors:
- Li, Donghui
Cao, Jianwei
Ma, Haitao
Bian, Wensheng - Abstract:
- Abstract : The present calculations reveal the effects of intersystem crossings and spin–orbit couplings on laser cooling of the group VA hydrides, with an empirical law of "crossing point shifting down" down a group in the periodic table generalized. Abstract : We investigate the low-lying electronic states and feasibility of direct laser cooling of AsH, SbH and BiH by means of the highly accurate ab initio and dynamical methods with the inclusion of the spin–orbit coupling effects. Twelve low-lying Ω states for each of them are computed using the internally contracted multireference configuration interaction method. Our computed spectroscopic constants are in excellent agreement with the available experimental data. The calculated spin–orbit matrix elements are large enough, and thus the intersystem crossings from the A 3 Π state and the transitions to the a 1 Δ2 state should be considered in laser cooling. We find that, from AsH to BiH, the location of the crossing point between the A 3 Π and 5 Σ − states moves down towards the ground vibrational level of A 3 Π along with enhanced spin–orbit coupling effects, which increases the difficulty of laser cooling heavier hydrides. An empirical law of "crossing point shifting down" down a group in the periodic table is generalized, which may become a helpful caveat when cooling diatomic molecules containing heavier elements. By choosing specific spin–orbit states, we construct feasible laser cooling schemes for AsH and SbH basedAbstract : The present calculations reveal the effects of intersystem crossings and spin–orbit couplings on laser cooling of the group VA hydrides, with an empirical law of "crossing point shifting down" down a group in the periodic table generalized. Abstract : We investigate the low-lying electronic states and feasibility of direct laser cooling of AsH, SbH and BiH by means of the highly accurate ab initio and dynamical methods with the inclusion of the spin–orbit coupling effects. Twelve low-lying Ω states for each of them are computed using the internally contracted multireference configuration interaction method. Our computed spectroscopic constants are in excellent agreement with the available experimental data. The calculated spin–orbit matrix elements are large enough, and thus the intersystem crossings from the A 3 Π state and the transitions to the a 1 Δ2 state should be considered in laser cooling. We find that, from AsH to BiH, the location of the crossing point between the A 3 Π and 5 Σ − states moves down towards the ground vibrational level of A 3 Π along with enhanced spin–orbit coupling effects, which increases the difficulty of laser cooling heavier hydrides. An empirical law of "crossing point shifting down" down a group in the periodic table is generalized, which may become a helpful caveat when cooling diatomic molecules containing heavier elements. By choosing specific spin–orbit states, we construct feasible laser cooling schemes for AsH and SbH based on the A 3 Π2 → X 3 Σ−1 transitions, which feature very large vibrational branching ratios R 00 (AsH: 0.9662; SbH: 0.9248) and short radiative lifetimes (AsH: 914 ns; SbH: 883 ns). In particular, a constructed laser cooling scheme for AsH is able to scatter 1.24 × 10 4 photons, whereas that for SbH can scatter 8.60 × 10 3 photons, which are enough to cool AsH and SbH to the ultracold regime. The present work demonstrates the importance of intersystem crossings and spin–orbit couplings in molecular laser cooling. … (more)
- Is Part Of:
- Physical chemistry chemical physics. Volume 24:Issue 17(2022)
- Journal:
- Physical chemistry chemical physics
- Issue:
- Volume 24:Issue 17(2022)
- Issue Display:
- Volume 24, Issue 17 (2022)
- Year:
- 2022
- Volume:
- 24
- Issue:
- 17
- Issue Sort Value:
- 2022-0024-0017-0000
- Page Start:
- 10114
- Page End:
- 10123
- Publication Date:
- 2022-04-13
- Subjects:
- Chemistry, Physical and theoretical -- Periodicals
541.3 - Journal URLs:
- http://pubs.rsc.org/en/journals/journalissues/cp#!issueid=cp016040&type=current&issnprint=1463-9076 ↗
http://www.rsc.org/ ↗ - DOI:
- 10.1039/d2cp00387b ↗
- Languages:
- English
- ISSNs:
- 1463-9076
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 6475.306000
British Library DSC - BLDSS-3PM
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- 21555.xml