We carried out a direct dynamics study on the internal-energy dependence of the ensemble-averaged energy transfer moments of the isobutyl radical in collisions with N bath gas. We find a linear dependence of the downward moment ⟨Δ⟩ and the root-mean-square moment on the initial internal energy, but the upward moment ⟨Δ⟩ is found to be independent of the molecule's internal energy. We improved the exponential-down relaxation model by including a linear dependence of ⟨Δ⟩ on the initial energy, and we used the improved treatment in the 1D master equation for isobutyl radical decomposition reactions and for a model of competitive reactions with a larger difference in barrier heights. We calculated phenomenological rate constants and branching ratios from chemically significant eigenmodes of the master equation and showed that the energy dependence of ⟨Δ⟩ has a greater influence on channels with higher barriers in competitive reactions. Rate constants and branching ratios from master equation calculations indicate that for a given temperature and pressure, there is a constant ⟨Δ⟩ that can reproduce results obtained with an -dependent ⟨Δ⟩. But a constant ⟨Δ⟩ cannot do this for all temperatures and pressures, with larger differences when the barriers for the competing channels differ more. We conclude that when the branching ratio of competitive reactions is sensitive to pressure, including the energy dependence of ⟨Δ⟩ in master equation simulations can make a significant difference in the results.
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http://dx.doi.org/10.1021/acs.jpca.1c03845 | DOI Listing |
In this paper, we study the Schrödinger cat state transfer in a quantum optical version of Newton's cradle in a non-Markovian environment. Based on a non-Markovian master equation, we show that the cat state can be transferred purely through the memory effect of the non-Markovian common environment, even without any direct couplings between neighbor cavities. The mechanism of the environment-induced cat state transfer is analyzed both analytically and numerically to demonstrate that the transfer is a unique phenomenon in a non-Markovian regime.
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Institute of Allied Health Sciences, College of Medicine, National Cheng Kung University, Tainan, Taiwan.
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Department of Physics and Fujian Provincial Key Laboratory of Low Dimensional Condensed Matter Physics, Xiamen University, Xiamen 361005, China.
We show that the theory of quantum statistical mechanics is a special model in the framework of the quantum probability theory developed by mathematicians, by extending the characteristic function in the classical probability theory to the quantum probability theory. As dynamical variables of a quantum system must respect certain commutation relations, we take the group generated by a Lie algebra constructed with these commutation relations as the bridge, so that the classical characteristic function defined in a Euclidean space is transformed to a normalized, non-negative definite function defined in this group. Indeed, on the quantum side, this group-theoretical characteristic function is equivalent to the density matrix; hence, it can be adopted to represent the state of a quantum ensemble.
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Department of Psychology, Faculty of Economics and Management, Czech University of Life Sciences, Prague, Czech Republic.
Several studies have demonstrated the positive effects of mindfulness and self-compassion on employee well-being, mental health, and resilience. The objective of this observational study was to explore the mutual relationships among the dimensions of self-compassion and particular characteristics of work-related well-being: work engagement, workaholism (excessive and compulsive work), and job boredom in a population of early career workers. In this quantitative cross-sectional study, 286 master's students with proper working experience were examined; results from 244 respondents were suitable for further data analysis.
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