Energy transfer in (PEA)2FAn-1PbnBr3n+1 quasi-2D perovskites

被引:7
作者
Litvinas, Dziugas [1 ]
Aleksiejunas, Ramunas [1 ]
Scajev, Patrik [1 ]
Baronas, Paulius [1 ]
Soriute, Vaiva [1 ]
Qin, Chuanjiang [2 ]
Fujihara, Takashi [3 ]
Matsushima, Toshinori [4 ,5 ,6 ]
Adachi, Chihaya [4 ,5 ,6 ]
Jursenas, Saulius [1 ]
机构
[1] Vilnius Univ, Fac Phys, Inst Photon & Nanotechnol, Sauletekio Ave 3, LT-10257 Vilnius, Lithuania
[2] Chinese Acad Sci, Changchun Inst Appl Chem CIAC, State Key Lab Polymer Phys & Chem, 5625 Renmin St, Changchun 130022, Peoples R China
[3] Inst Syst Informat Technol & Nanotechnol ISIT, Innovat Organ Device Lab, Nishi Ku, Fukuoka Ind Acad Symphon FiaS 2-110, Fukuoka 8190388, Japan
[4] Kyushu Univ, Int Inst Carbon Neutral Energy Res WPI I2CNER, Nishi Ku, 744 Motooka, Fukuoka 8190395, Japan
[5] Kyushu Univ, Ctr Organ Photon & Elect Res OPERA, Nishi Ku, 744 Motooka, Fukuoka 8190395, Japan
[6] Japan Sci & Technol Agcy JST, Adachi Mol Exciton Engn Project, ERATO, Nishi Ku, 744 Motooka, Fukuoka 8190395, Japan
基金
日本科学技术振兴机构;
关键词
EXCITON BINDING-ENERGY; CARRIER DIFFUSION; EFFICIENT; METHYLAMMONIUM; LAYERS; CH3NH3PBI3; SHIFT;
D O I
10.1039/d1tc00422k
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Quasi-two dimensional perovskites demonstrate unique excitonic properties due to their multilayer structure making them attractive for various optoelectronic applications. However, the thickness of individual perovskite sheets in wet cast quasi-2D layers tends to randomly fluctuate giving rise to a specific type of disorder, which impacts on the carrier dynamics and is rather complex and remains understudied. Here, we present a study of carrier transport in Ruddlesden-Popper type (PEA)(2)FA(n-1)Pb(n)Br(3n+1) layers of order n from one to four, and in the bulk FAPbBr(3) layer. We use a light induced transient grating technique to measure the carrier diffusion coefficient directly, and the transient absorption via photoluminescence to investigate the energy relaxation pathways. We observe two distinct energy transfer processes on different time scales. Fast energy funnelling in thicker (n >= 3) layers is observed up to 10 ps after excitation; we attribute this to short-distance transfer of excitons to neighbouring perovskite sheets of higher order. On the longer timescale of hundreds of picoseconds, carrier in-plane transport is governed by exciton diffusion in n = 1 and 2 layers and by free carrier plasma in thicker ones. Within the carrier density range of (0.5-4) x 10(19) cm(-3), the exciton diffusion coefficient in n = 1, 2 increases slowly from 1 to 2.8 cm(2) s(-1), whereas in thicker layers the dependence is much stronger and the diffusivity grows from 0.09 to 1.9 cm(2) s(-1). We explain these dependencies by a higher structural order in the thinner samples and the stronger localization of carriers in thicker ones. Also, amplified spontaneous emission (ASE) is observed in thicker (n >= 3) layers in electron-hole plasma, as evidenced by the typical ASE line redshift upon excitation.
引用
收藏
页码:4782 / 4791
页数:10
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