首页 | 本学科首页   官方微博 | 高级检索  
   检索      


A highly efficient heptamethine cyanine antenna for photosynthetic Reaction Center: From chemical design to ultrafast energy transfer investigation of the hybrid system
Authors:Simona la Gatta  Francesco Milano  Gianluca M Farinola  Angela Agostiano  Mariangela Di Donato  Andrea Lapini  Paolo Foggi  Massimo Trotta  Roberta Ragni
Institution:1. Dipartimento di Chimica, Università degli Studi di Bari “Aldo Moro”, Via Orabona 4, 70125 Bari, Italy;2. CNR-IPCF, Institute for Physical and Chemical Processes, Bari unit, Via Orabona 4, 70125 Bari, Italy;3. LENS (European Laboratory for Nonlinear Spectroscopy), via N. Carrara 1, 50019 Sesto Fiorentino, FI, Italy;4. INO (Istituto Nazionale di Ottica), Largo Fermi 6, 50125 Firenze, Italy;5. Department of Chemistry, University of Perugia, via Elce di Sotto 8, 06100 Perugia, Italy
Abstract:The photosynthetic Reaction Center (RC) from the purple bacterium Rhodobacter sphaeroides has unique photoconversion capabilities, that can be exploited in assembly biohybrid devices for applications in solar energy conversion. Extending the absorption cross section of isolated RC through covalent functionalization with ad-hoc synthesized artificial antennas is a successful strategy to outperform the efficiency of the pristine photoenzyme under visible light excitation. Here we report a new heptamethine cyanine antenna that, upon covalent binding to RC, forms a biohybrid (hCyN7-RC) which, under white light excitation, has doubled photoconversion efficiency versus the bare photoenzyme. The artificial antenna hCyN7 successfully meets appropriate optical properties, i.e. peak position of absorption and emission maximum in the visible and NIR region respectively, large Stokes shift, and high fluorescence quantum yield, required for improving the efficiency of the biohybrid in the production of the charge-separated state in the RC. The kinetics of energy transfer and charge separation of hCyN7-RC studied via ultrafast visible and IR spectroscopies are here presented. The antenna transfers energy to RC chromophores within <10?ps and the rate of QA reduction is doubled compared to the native RC. These experiments further demonstrate hCyN7-RC, besides being an extremely efficient white light photoconverter, fully retains the charge separation mechanism and integrity of the native RC photoenzyme, thus allowing to envisage its suitability as biohybrid material in bioinspired systems for solar energy conversion.
Keywords:Photoenzyme  Photosynthetic bacteria  Light harvesting antenna  Bioconjugation  Solar energy conversion  Photocurrent  Biophotovoltaic
本文献已被 ScienceDirect 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号