ICFO-Institut de Ciencies Fotoniques, Mediterranean Technology Park, 08860 Castelldefels (Barcelona), Spain.
Phys Rev Lett. 2013 May 24;110(21):218101. doi: 10.1103/PhysRevLett.110.218101. Epub 2013 May 21.
Photosynthesis is a biological process that involves the highly efficient transport of energy captured from the Sun to a reaction center, where conversion into useful biochemical energy takes place. Using a quantum description, Rebentrost et al. [New J. Phys. 11, 033003 (2009)] and Plenio and Huelga [New J. Phys. 10, 113019 (2008)] have explained this high efficiency as the result of the interplay between the quantum coherent evolution of the photosynthetic system and noise introduced by its surrounding environment. Even though one can always use a quantum perspective to describe any physical process, since everything follows the laws of quantum mechanics, is the use of quantum theory imperative to explain this high efficiency? Recently, it has been shown by Eisfeld and Briggs [Phys. Rev. E 85, 046118 (2012)] that a purely classical model can be used to explain main aspects of the energy transfer in photosynthetic systems. Using this approach, we demonstrate explicitly here that highly efficient noise-assisted energy transport can be found as well in purely classical systems. The wider scope of applicability of the enhancement of energy transfer assisted by noise might open new ways for developing new technologies aimed at enhancing the efficiency of a myriad of energy transfer systems, from information channels in microelectronic circuits to long-distance high-voltage electrical lines.
光合作用是一个将从太阳捕获的能量高效传输到反应中心的生物过程,在那里发生转化为有用的生化能量的过程。Rebentrost 等人 [New J. Phys. 11, 033003 (2009)] 和 Plenio 和 Huelga [New J. Phys. 10, 113019 (2008)] 使用量子描述解释了这种高效率是光合作用系统的量子相干演化与周围环境引入的噪声之间相互作用的结果。尽管人们总是可以使用量子观点来描述任何物理过程,因为一切都遵循量子力学定律,但量子理论的使用对于解释这种高效率是否是必要的?最近,Eisfeld 和 Briggs [Phys. Rev. E 85, 046118 (2012)] 表明,可以使用纯粹的经典模型来解释光合作用系统中能量转移的主要方面。使用这种方法,我们在这里明确证明,在纯粹的经典系统中也可以找到高效的噪声辅助能量传输。噪声辅助能量转移增强的更广泛适用性可能为开发新技术开辟新途径,旨在提高从微电子电路中的信息通道到远距离高压电线的各种能量转移系统的效率。