Generalized Einstein relations between absorption and emission spectra at thermodynamic equilibrium.

IF 9.4 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Proceedings of the National Academy of Sciences of the United States of America Pub Date : 2024-09-10 Epub Date: 2024-09-03 DOI:10.1073/pnas.2410280121
Jisu Ryu, Sarang Yeola, David M Jonas
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Abstract

We present Einstein coefficient spectra and a detailed-balance derivation of generalized Einstein relations between them that is based on the connection between spontaneous and stimulated emission. If two broadened levels or bands overlap in energy, transitions between them need not be purely absorptive or emissive. Consequently, spontaneous emission can occur in both transition directions, and four Einstein coefficient spectra replace the three Einstein coefficients for a line. At equilibrium, the four different spectra obey five pairwise relationships and one lineshape generates all four. These relationships are independent of molecular quantum statistics and predict the Stokes' shift between forward and reverse transitions required by equilibrium with blackbody radiation. For Boltzmann statistics, the relative strengths of forward and reverse transitions depend on the formal chemical potential difference between the initial and final bands, which becomes the standard chemical potential difference for ideal solutes. The formal chemical potential of a band replaces both the energy and degeneracy of a quantum level. Like the energies of quantum levels, the formal chemical potentials of bands obey the Rydberg-Ritz combination principle. Each stimulated Einstein coefficient spectrum gives a frequency-dependent transition cross-section. Transition cross-sections obey causality and a detailed-balance condition with spontaneous emission, but do not directly obey generalized Einstein relations. Even with an energetic width much less than the photon energy, a predominantly absorptive forward transition with an energetic width much greater than the thermal energy can have such an extreme Stokes' shift that its reverse transition cross-section becomes predominantly absorptive rather than emissive.

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热力学平衡状态下吸收光谱和发射光谱之间的广义爱因斯坦关系。
我们提出了爱因斯坦系数光谱以及它们之间广义爱因斯坦关系的详细平衡推导,该推导基于自发辐射和受激辐射之间的联系。如果两个拓宽的级或带在能量上重叠,它们之间的跃迁就不一定是纯粹的吸收或发射。因此,自发辐射可以发生在两个跃迁方向上,四个爱因斯坦系数光谱取代了一条线的三个爱因斯坦系数。在平衡状态下,四种不同的光谱服从五种成对关系,一种线型可产生所有四种光谱。这些关系与分子量子统计无关,并预测了黑体辐射平衡所需的正向和反向转换之间的斯托克斯偏移。在玻尔兹曼统计中,正向和反向跃迁的相对强度取决于初始带和最终带之间的形式化学势差,即理想溶质的标准化学势差。波段的形式化学势取代了量子水平的能量和变性。与量子水平的能量一样,谱带的形式化学势也遵循雷德贝格-里兹组合原理。每个受激爱因斯坦系数谱都给出了与频率相关的转变截面。转变截面服从自发辐射的因果关系和详细平衡条件,但并不直接服从广义爱因斯坦关系。即使能量宽度远小于光子能量,一个能量宽度远大于热能的以吸收为主的正向跃迁也会产生极端的斯托克斯偏移,以至于其反向跃迁截面变成以吸收为主而不是以发射为主。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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