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基于全量子点供体-受体系统的静电驱动共振能量转移

Electrostatically Driven Resonance Energy Transfer in an All-Quantum Dot Based Donor-Acceptor System.

作者信息

Roy Pradyut, Devatha Gayathri, Roy Soumendu, Rao Anish, Pillai Pramod P

机构信息

Department of Chemistry and Center for Energy Sciences, Indian Institute of Science Education and Research, Dr. Homi Bhabha Road, Pashan, Pune 411 008, India.

出版信息

J Phys Chem Lett. 2020 Jul 2;11(13):5354-5360. doi: 10.1021/acs.jpclett.0c01360. Epub 2020 Jun 22.

Abstract

Demonstration of fundamental photophysical properties in environmentally friendly quantum dots (QDs) is essential to realize their practical use in various light harvesting applications. We accomplish here an efficient light induced resonance energy transfer in all-QD based donor-acceptor system in water, deprived of any commonly used organic dye component. Our nanohybrid system comprises surface engineered indium phosphide/zinc sulfide (InP/ZnS) QD as the donor, and copper indium sulfide/zinc sulfide (CIS/ZnS) QD as the acceptor. The electrostatic attraction between oppositely charged QDs is vital in achieving a strong ground state complexation in the [-] InP/ZnS:::[+] CIS/ZnS QD nanohybrid. A nonlinear Stern-Volmer plot confirms the involvement of both static and dynamic components in the PL quenching of InP/ZnS QD by CIS/ZnS QD. Moreover, a temporal evolution of resonance energy transfer is realized in the solid state as well, which can improve the potential of such "all-green QD" based nanohybrid systems for device level studies.

摘要

证明环境友好型量子点(QDs)的基本光物理性质对于实现其在各种光捕获应用中的实际应用至关重要。我们在此实现了一种基于全量子点的供体 - 受体系统在水中的高效光诱导共振能量转移,该系统不含任何常用的有机染料成分。我们的纳米杂化系统包含表面工程化的磷化铟/硫化锌(InP/ZnS)量子点作为供体,以及铜铟硫化物/硫化锌(CIS/ZnS)量子点作为受体。带相反电荷的量子点之间的静电吸引力对于在[-]InP/ZnS:::[+]CIS/ZnS量子点纳米杂化物中实现强基态络合至关重要。非线性斯特恩 - 沃尔默图证实了静态和动态成分都参与了CIS/ZnS量子点对InP/ZnS量子点的光致发光猝灭。此外,在固态中也实现了共振能量转移的时间演化,这可以提高这种基于“全绿色量子点”的纳米杂化系统在器件级研究中的潜力。

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