量子道和反道穿越热障碍物的量子道和反道
Paolo Malgaretti1, Francesco Petiziol2, Alexander Schnell2
1Helmholtz Institute Erlangen-Nürnberg for Renewable Energy (IET-2), Forschungszentrum Jülich, Cauerstr. 1, 91058 Erlangen, Germany.
The Journal of chemical physics
|August 1, 2025
概括
狭窄通道中的量子校正令人惊的是,在中间温度下抑制了粒子传输,这与增强道的预期相反. 这种"反道"效应增加了有效的障碍,影响了量子动力学.
科学领域:
- 量子力学就是量子力学.
- 凝聚物质物理学 凝聚物质物理学
- 统计力学就是统计力学.
背景情况:
- 在封闭系统中研究量子粒子动力学对于理解纳米运输现象至关重要.
- 经典模型往往无法在低温或受限制的几何形状下捕捉量子效应.
研究的目的:
- 分析量子校正对量子粒子在狭窄的二维通道中的高温行为的影响.
- 为了表征平衡和不平衡的运输特性,在一个狭窄的,随着温度下降而没有混乱的通道中.
主要方法:
- 使用量子主方程计算非平衡稳定状态的数值计算.
- 通过量子Smoluchowski极限进行分析确认.
主要成果:
- 量子校正不会在温度下降时单调地增强粒子电流.
- 一个个个个个个的.
- 反道建设的防护措施
- 观察到效应,其中量子校正抑制了在中间温度下的传输.
- 粒子运输的有效自由能量障碍因量子效应而增加.
结论:
- 量子校正在狭窄的道中引入了粒子运输中的复杂行为.
- 观察到的 观察到的
- 反道建设的防护措施
- 这种现象挑战了人们对低温道改造的天真期望.
- 了解这些量子效应对于设计和控制纳米运输系统至关重要.
相关概念视频
Entropy and the Second Law of Thermodynamics
3.2K
The second law of thermodynamics can be stated quantitatively using the concept of entropy. Entropy is the measure of disorder of the system.
The relation between entropy and disorder can be illustrated with the example of the phase change of ice to water. In ice, the molecules are located at specific sites giving a solid state, whereas, in a liquid form, these molecules are much freer to move. The molecular arrangement has therefore become more randomized. Although the change in average...
The relation between entropy and disorder can be illustrated with the example of the phase change of ice to water. In ice, the molecules are located at specific sites giving a solid state, whereas, in a liquid form, these molecules are much freer to move. The molecular arrangement has therefore become more randomized. Although the change in average...
3.2K
Entropy
31.3K
Salt particles that have dissolved in water never spontaneously come back together in solution to reform solid particles. Moreover, a gas that has expanded in a vacuum remains dispersed and never spontaneously reassembles. The unidirectional nature of these phenomena is the result of a thermodynamic state function called entropy (S). Entropy is the measure of the extent to which the energy is dispersed throughout a system, or in other words, it is proportional to the degree of disorder of a...
31.3K
Third Law of Thermodynamics
19.5K
A pure, perfectly crystalline solid possessing no kinetic energy (that is, at a temperature of absolute zero, 0 K) may be described by a single microstate, as its purity, perfect crystallinity,and complete lack of motion means there is but one possible location for each identical atom or molecule comprising the crystal (W = 1). According to the Boltzmann equation, the entropy of this system is zero.
19.5K
Entropy Change in Reversible Processes
2.7K
In the Carnot engine, which achieves the maximum efficiency between two reservoirs of fixed temperatures, the total change in entropy is zero. The observation can be generalized by considering any reversible cyclic process consisting of many Carnot cycles. Thus, it can be stated that the total entropy change of any ideal reversible cycle is zero.
The statement can be further generalized to prove that entropy is a state function. Take a cyclic process between any two points on a p-V diagram.
The statement can be further generalized to prove that entropy is a state function. Take a cyclic process between any two points on a p-V diagram.
2.7K
The Uncertainty Principle
24.6K
Werner Heisenberg considered the limits of how accurately one can measure properties of an electron or other microscopic particles. He determined that there is a fundamental limit to how accurately one can measure both a particle’s position and its momentum simultaneously. The more accurate the measurement of the momentum of a particle is known, the less accurate the position at that time is known and vice versa. This is what is now called the Heisenberg uncertainty principle. He...
24.6K
Second Law of Thermodynamics
24.3K
In the quest to identify a property that may reliably predict the spontaneity of a process, a promising candidate has been identified: entropy. Processes that involve an increase in entropy of the system (ΔS > 0) are very often spontaneous; however, examples to the contrary are plentiful. By expanding consideration of entropy changes to include the surroundings, a significant conclusion regarding the relation between this property and spontaneity may be reached. In thermodynamic...
24.3K


