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阐明界面工程化量子点在 PBSA 防晒霜中与 PBSA 防晒霜相互作用时的尺寸依赖性 FRET 效率。

Elucidating the Size-dependent FRET Efficiency in Interfacially Engineered Quantum Dots Attached to PBSA Sunscreen.

机构信息

Department of Chemistry, Quaid-I-Azam University, Islamabad, Pakistan.

Core Research Facilities, King Fahd University of Petroleum & Minerals, Dhahran, Saudi Arabia.

出版信息

Photochem Photobiol. 2022 Sep;98(5):1017-1024. doi: 10.1111/php.13599. Epub 2022 Feb 10.

Abstract

Applying sunscreen on human skin provides photoprotection against the harmful ultraviolet (UV) radiation of the sun. Sunscreen absorbs UV radiations and dissipates the absorbed energy through various radiative and nonradiative pathways. The attachment of functionalized quantum dots (QDs) to the sunscreen component is a novel idea to enhance the absorption cross-section of UV radiations. Therefore, the attachment of the sunscreen component to the ligand functionalized biocompatible QDs and the absorbed energy transfer from sunscreen to the QDs could work as a model system to overall improve the efficiency of the sunscreen. This study elucidates the mechanism of size-dependent Förster resonance energy transfer (FRET) efficiency and its rate between 2-phenylbenzimidazole-5-sulfonic acid (PBSA) and mercaptoacetic acid (MAA) functionalized CdS QDs. In the PBSA-QDs dyad, the PBSA (donor) dissipates UV-absorbed energy to the CdS QDs (acceptor). Following excitation at 306 nm, the steady-state photoluminescence (SSPL) and time-resolved photoluminescence (TRPL) techniques measurements demonstrate that both the nonradiative energy transfer efficiency and rate are QDs size-dependent in addition to donor-acceptor distance, and suggest that bigger sized-QDs result in an increase of the FRET efficiency.

摘要

将防晒霜涂在人体皮肤上,可以提供对太阳有害的紫外线 (UV) 辐射的光保护。防晒霜吸收紫外线辐射,并通过各种辐射和非辐射途径耗散吸收的能量。将功能化量子点 (QD) 附着到防晒霜成分上是一种增强紫外线辐射吸收截面的新想法。因此,将防晒霜成分附着到配体功能化的生物相容性 QD 上,以及从防晒霜到 QD 的吸收能量转移,可以作为一个模型系统,整体提高防晒霜的效率。本研究阐明了尺寸依赖的Förster 共振能量转移 (FRET) 效率及其在 2-苯并咪唑-5-磺酸 (PBSA) 和巯基乙酸 (MAA) 功能化 CdS QD 之间的速率的机制。在 PBSA-QD 偶联物中,PBSA(供体)将 UV 吸收的能量耗散到 CdS QD(受体)。在 306nm 激发后,稳态光致发光 (SSPL) 和时间分辨光致发光 (TRPL) 技术测量表明,除了供体-受体距离之外,非辐射能量转移效率和速率都与 QD 尺寸有关,并且表明更大尺寸的 QD 导致 FRET 效率增加。

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