The coherence time of sunlight in the context of natural and artificial light-harvesting

被引:9
作者
Ricketti, Berke Vow [1 ]
Gauger, Erik M. [1 ]
Fedrizzi, Alessandro [1 ]
机构
[1] Heriot Watt Univ, Sch Engn & Phys Sci, Inst Photon & Quantum Sci, Edinburgh EH14 4AS, Midlothian, Scotland
基金
英国工程与自然科学研究理事会;
关键词
QUANTUM COHERENCE; SPATIAL COHERENCE; BANDWIDTH; DYNAMICS; PHOTOSYNTHESIS; PROTEIN;
D O I
10.1038/s41598-022-08693-0
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The suggestion that quantum coherence might enhance biological processes such as photosynthesis is not only of fundamental importance but also leads to hopes of developing bio-inspired 'green' quantum technologies that mimic nature. A key question is how the timescale of coherent processes in molecular systems compare to that of the driving light source-the Sun. Across the quantum biology literature on light-harvesting, the coherence time quoted for sunlight spans about two orders of magnitude, ranging from 0.6 to '10s' of femtoseconds. This difference can potentially be significant in deciding whether the induced light-matter coherence is long enough to affect dynamical processes following photoexcitation. Here we revisit the historic calculations of sunlight coherence starting with the black-body spectrum and then proceed to provide values for the more realistic case of atmospherically filtered light. We corroborate these values with interferometric measurements of the complex degree of temporal coherence from which we calculate the coherence time of atmospherically filtered sunlight as 1.12 +/- 0.04 fs, as well as the coherence time in a chlorophyll analogous filtered case as 4.87 +/- 0.21 fs.
引用
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页数:9
相关论文
共 60 条
[1]   Optical modeling of sunlight by using partially coherent sources in organic solar cells [J].
Alaibakhsh, Hamzeh ;
Darvish, Ghafar .
APPLIED OPTICS, 2016, 55 (07) :1808-1813
[2]   A Little Coherence in Photosynthetic Light Harvesting [J].
Anna, Jessica M. ;
Scholes, Gregory D. ;
van Grondelle, Rienk .
BIOSCIENCE, 2014, 64 (01) :14-25
[3]  
Blankenship R. E., 2008, Molecular mechanisms of photosynthesis, DOI [10.1002/9780470758472.ch1, DOI 10.1002/9780470758472.CH1]
[4]  
Born M., 2013, Principles of Optics: Electromagnetic Theory of Propagation, Interference and Diffraction of Light
[5]   Molecular response in one-photon absorption via natural thermal light vs. pulsed laser excitation [J].
Brumer, Paul ;
Shapiro, Moshe .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (48) :19575-19578
[6]   Quantum biology revisited [J].
Cao, Jianshu ;
Cogdell, Richard J. ;
Coker, David F. ;
Duan, Hong-Guang ;
Hauer, Jurgen ;
Kleinekathoefer, Ulrich ;
Jansen, Thomas L. C. ;
Mancal, Tomas ;
Miller, R. J. Dwayne ;
Ogilvie, Jennifer P. ;
Prokhorenko, Valentyn, I ;
Renger, Thomas ;
Tan, Howe-Siang ;
Tempelaar, Roel ;
Thorwart, Michael ;
Thyrhaug, Erling ;
Westenhoff, Sebastian ;
Zigmantas, Donatas .
SCIENCE ADVANCES, 2020, 6 (14)
[7]   Single-photon absorption by single photosynthetic light-harvesting complexes [J].
Chan, Herman C. H. ;
Gamel, Omar E. ;
Fleming, Graham R. ;
Whaley, K. Birgitta .
JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 2018, 51 (05)
[8]   PHASE CORRECTION IN FT-IR [J].
CHASE, DB .
APPLIED SPECTROSCOPY, 1982, 36 (03) :240-244
[9]   Dynamics of Light Harvesting in Photosynthesis [J].
Cheng, Yuan-Chung ;
Fleming, Graham R. .
ANNUAL REVIEW OF PHYSICAL CHEMISTRY, 2009, 60 :241-262
[10]   First-order decomposition of thermal light in terms of a statistical mixture of single pulses [J].
Chenu, Aurelia ;
Branczyk, Agata M. ;
Sipe, J. E. .
PHYSICAL REVIEW A, 2015, 91 (06)