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供体-受体浓度比 对零维 CsPbBr 钙钛矿/MEH-PPV 纳米复合薄膜中非辐射能量转移的影响

Effect of Donor-Acceptor Concentration Ratios on Non-Radiative Energy Transfer in Zero-Dimensional CsPbBr Perovskite/MEH-PPV Nanocomposite Thin Films.

作者信息

Al-Asbahi Bandar Ali, Qaid Saif M H, Al Dwayyan Abdullah S Al

机构信息

Department of Physics & Astronomy, College of Science, King Saud University, Riyadh 11451, Saudi Arabia.

Department of Physics, Faculty of Science, Sana'a University, Sana'a P.O. Box 12544, Yemen.

出版信息

Polymers (Basel). 2020 Feb 13;12(2):444. doi: 10.3390/polym12020444.

Abstract

Composite materials with different concentration ratios of a hybrid of zero-dimensional (0-D) CsPbBr perovskite, which acts as a donor (D), and poly[2-methoxy-5-(2-ethylhexyloxy)-1,4-phenylenevinylene] (MEH-PPV), which acts as an acceptor (A), were successfully prepared via a solution blending method prior to being deposited onto glass substrates by a spin-coating technique. The influence of acceptor content on the structural, optical, and energy transfer properties of the donor was investigated. The perovskite nanocrystals formed thin films without any chemical interactions within a matrix of MEH-PPV in the blend. The possibility of dipole-dipole (non-radiative) energy transfer from the 0-D CsPbBr to the MEH-PPV was proven. The energy transfer parameters such as (critical distance of the energy transfer), k (apparent quenching constant), ∅DA (quantum yield of D in the presence of A), τDA (lifetime of D in the presence of A), (probability of energy transfer), (efficiency of energy transfer), (energy transfer radius), (energy transfer rate constant), T (total decay rate), (critical concentration of A), and (conjugation length) were calculated based on the absorption and emission measurements.

摘要

通过溶液共混法成功制备了具有不同浓度比的复合材料,该复合材料由作为供体(D)的零维(0-D)CsPbBr钙钛矿与作为受体(A)的聚[2-甲氧基-5-(2-乙基己氧基)-1,4-亚苯基乙烯撑](MEH-PPV)杂化而成,然后通过旋涂技术将其沉积在玻璃基板上。研究了受体含量对供体的结构、光学和能量转移特性的影响。在共混物中,钙钛矿纳米晶体在MEH-PPV基质内形成了没有任何化学相互作用的薄膜。证明了从0-D CsPbBr到MEH-PPV的偶极-偶极(非辐射)能量转移的可能性。基于吸收和发射测量计算了能量转移参数,如(能量转移的临界距离)、k(表观猝灭常数)、∅DA(存在A时D的量子产率)、τDA(存在A时D的寿命)、(能量转移概率)、(能量转移效率)、(能量转移半径)、(能量转移速率常数)、T(总衰减率)、(A的临界浓度)和(共轭长度)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9611/7077638/d393157c2a7e/polymers-12-00444-g001.jpg

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