• 제목/요약/키워드: $MAPbI_3$

검색결과 16건 처리시간 0.023초

Gold Nanoparticles-embedded MAPbI3 Perovskite Thin Films

  • Kim, Hyojung;Byun, Hye Ryung;Kim, Bora;Jeong, Mun Seok
    • Journal of the Korean Physical Society
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    • 제73권11호
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    • pp.1725-1728
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    • 2018
  • We synthesized the gold nanoparticles (Au NPs)-embedded methylammonium lead iodide ($MAPbI_3$) film for the first time. The effects of metal nanoparticles on $MAPbI_3$ perovskite were systematically studied using UV-Vis absorption and photoluminescence (PL) measurements. As a result, the 20-nm-sized Au NPs-embedded $MAPbI_3$ film exhibited a 4.15% higher absorbance than the bare $MAPbI_3$ film. Moreover, the average PL intensity of the Au NPs-embedded $MAPbI_3$ film increased by about 75.25% over the bare $MAPbI_3$ film. Therefore, we have confirmed that addition of the Au NPs has a positive effect on the optical properties of $MAPbI_3$, and we believe that this study will provide a basic insight into the metal nanoparticles-embedded perovskite thin films for the future optoelectronic applications.

이중주입 초음파분무법에 의한 메틸암모늄 할로젠화 납 페로브스카이트 박막의 제조 (Preparation of methylammonium lead halide perovskite thin films by dual feed ultrasonic spray method)

  • 김록윤;김태희;박경봉
    • 한국결정성장학회지
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    • 제29권1호
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    • pp.6-11
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    • 2019
  • 본 연구에서는 페로브스카이트 태양전지의 광흡수체로 사용되는 메틸암모늄 할로젠화 납(methylammonium lead halide, $MAPbX_3$, X = I, Br) 페로브스카이트(perovskite) 박막을 이중주입 초음파분무법을 이용하여 제조하였다. 이중주입 초음파 분무법을 통해 $60^{\circ}C$ 이하의 기판온도에서 분무한 후, $75^{\circ}C$에서 5분간 최종열처리 후 $MAPbI_3$ 단일상을 제조할 수 있었다. $80^{\circ}C$ 이상의 온도에서 분무 증착 시에는 페로브스카이트 상의 분해로 인해 구형의 결정립이 막대형태의 프렉탈(fractal) 구조로 변화되었다. $MAPbI_3$ 용액과 $MAPbIBr_2$ 용액의 이중주입을 통해, $MAPbI_3$ 박막에 비해 높은 $100^{\circ}C$의 열처리로 $MAPbI_{3-x}Br_x$ 박막을 제조할 수 있었다.

단일 스텝 스핀 코팅 방법에서 증발 제어 공정 변경에 따른 페로브스카이트 박막 물성 및 태양 전지 소자 특성 변화에 관한 연구 (Properties of Perovskite Materials and Devices Fabricated Using the Solvent Engineered One-Step Spin Coating Method)

  • 오정석;권남희;차덕준;양정엽
    • 새물리
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    • 제68권11호
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    • pp.1208-1214
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    • 2018
  • 단일 스텝 스핀 코팅 (one-step spin coating) 공정은 $MAPbI_3$ 페로브스카이트 (Perovskite) 박막의 결정화가 우수하여 고효율 태양 전지 제작이 가능하다. 이 공정의 핵심은 솔벤트 증발 제어 공정을 사용하는 것인데, 이는 스핀 코팅 시 $MAPbI_3$ 의 용해도를 증가 시킬 수 있는 용매를 투입하는 (dripping) 방식이다. 본 연구에서 용매의 양, 투입속도 및 시간에 따라 생성되는 $MAPbI_3$의 특성을 분석하고, 이렇게 만들어진 박막을 이용한 태양 전지 특성을 조사하였다. $MAPbI_3$ 박막 형성을 위하여 lead iodide, methyl-ammonium iodide를 N,N-dimethylformamide에 녹이고, N,N-dimethyl sulfoxide를 첨가하여 용액을 만들었으며, 증발 제어 공정을 위한 용매로 diethyl ether (DE)를 사용하였다. DE의 투입 조건에 따라 $MAPbI_3$ 박막 형성 시 핵 생성에 차이가 생기고, 이는 $MAPbI_3$의 결정화, 밀도 및 표면 상태에 영향을 미치는 것으로 나타났으며, 이에 따라 태양 전지의 효율이 달라지는 것을 알 수 있었다. 0.7 mL의 DE의 양, 3.03 mL/sec 투입 속도, 7초(스핀 코팅 시작 후 투입시간)의 솔벤트 증발 제어 공정 결과 최대 13.74% 효율을 가지는 태양 전지 소자를 재현성 있게 관측할 수 있었다.

실시간 XRD와 TEM을 이용한 MAPbI3의 온도 변화에 따른 구조 분석 (Investigation of Electron Thermally Induced Phase Transition in MAPbI3 Perovskite Solar Cells Using In-Situ XRD and TEM)

  • 최진석;엄지호;윤순길
    • 한국전기전자재료학회논문지
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    • 제32권1호
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    • pp.64-69
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    • 2019
  • Methylammonium lead triiodide ($MAPbI_3$)-based perovskite solar cells potentially have potential advantages such as high efficiency and low-cost manufacturing procedures. However, $MAPbI_3$ is structurally unstable and has low phase-change temperatures ($30^{\circ}C$ and $130^{\circ}C$); it is necessary to solve these problems. We investigated the crystal structure and phase separation using real-time temperature-change X-ray diffraction, transmission electron microscopy, and electron energy loss spectroscopy. $MAPbI_3$ has a tetragonal structure, and at about $35^{\circ}C$ the c-axis contracts, transforming $MAPbI_3$ into the related cubic crystal structure. In addition, at $130^{\circ}C$, phase separation occurs in which $CH_3NH_2$ and HI at the center of the unit cell of the perovskite structure are extracted by gas, leavingand only $PbI_2$ of the three-component structure, is produced as the final solid product.

First Principles Study of Mixed Inorganic-Organic Perovskites (HC(NH2)2PbI3-CH3NH3PbBr3) for Photovoltaic Applications

  • Noh, Min Jong
    • EDISON SW 활용 경진대회 논문집
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    • 제4회(2015년)
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    • pp.378-381
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    • 2015
  • To produce low cost and efficient photovoltaic cells, inorganic-organic lead halide perovskite materials appear promising for most suitable solar cells owing to their high power conversion efficiency. Most recent research showes that formamidinium lead iodide ($FAPbI_3$) with methylammonium lead bromide ($MAPbBr_3$) improves the power conversion efficiency of the solar cell to more than 18 per cent under a standard illumination because incorporated $MAPbBr_3$ makes $FAPbI_3$-relatively unstable but comparatively narrow band gap-more stable composition. In respect to first principle study, we investigated band gap of $MAPbI_3$, $FAPbI_3$, $MAPbBr_3$, $(FAPbI_3)_{0.89}-(MAPbBr_3)_{0.11}$ and 0.615(eV), 0.466, 1.197, 0.518 respectively through EDISON DFT software. These results emphasize enhancing structure stability is important factor as well as finding narrow band gap.

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화학 기상 증착법을 이용한 유/무기 MAPbI3 페로브스카이트 박막 성장 (Growth of Organic/Inorganic MAPbI3 Perovskite Thin Films via Chemical Vapor Deposition)

  • 정장수;엄지호;;윤순길
    • 한국전기전자재료학회논문지
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    • 제33권4호
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    • pp.315-320
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    • 2020
  • Methylammonium lead iodide (MAPbI3) thin films were grown at low temperatures on glass substrates via 3-zone chemical vapor deposition. Lead iodide (PbI2) and lead bis (dipivaloylmethanate) [Pb(dpm)2] precursors were used as lead sources. Due to the high sublimation temperature (~400℃) of the PbI2 precursor, a low substrate temperature could not be constantly maintained. Therefore, MAPbI3 thin films degraded into the PbI2 phase. In contrast, for the Pb(dpm)2 precursor, a substrate temperature of ~120℃ was maintained because the sublimation temperature of Pb(dpm)2 is as low as 130℃ at a high vapor pressure. As a result, high-quality MAPbI3 thin films were successfully grown on glass substrates using Pb(dpm)2. The rms (root-mean-square) roughness of MAPbI3 thin films formed from Pb(dpm)2 was as low as ~19.2 nm, while it was ~22.7 nm for those formed using PbI2. The grain size of the films formed from Pb(dpm)2 was as large as approximately 350 nm.

Ion Migration in Metal Halide Perovskites

  • Nur'aini, Anafi;Lee, Seokwon;Oh, Ilwhan
    • Journal of Electrochemical Science and Technology
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    • 제13권1호
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    • pp.71-77
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    • 2022
  • Metal halide perovskites are promising photovoltaic materials, but they still have some issues that need to be solved. Hysteresis is a phenomenon that strongly is correlated with ion migration; thus, a fast, easy, and low-temperature method for measuring ion migration is required. Through selective blocking, ion migration can be measured separately, apart from electron migration. In this study, ion migration in metal halide perovskites was measured using a vertical device. At different temperatures, ionic activation energies were obtained for a range of perovskite compositions such as MAPbI3, FAPbI3, CsPbI3, and MAPbBr3. By comparing the measured ionic activation energies with the theoretical values, we conclude that among other possibilities, I- is the migrating ion in MAPbI3, FAPbI3, CsPbI3, and Br- is the migrating in MAPbBr3.

Polymer Passivation Effect on Methylammonium Lead Halide Perovskite Photodetectors

  • Kim, Hyojung;Byun, Hye Ryung;Kim, Bora;Kim, Sung Hyuk;Oh, Hye Min;Jeong, Mun Seok
    • Journal of the Korean Physical Society
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    • 제73권11호
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    • pp.1675-1678
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    • 2018
  • Methylammonium lead halide ($MAPbI_3$) perovskites are considered as promising materials owing to their excellent optical and electrical properties. However, perovskite materials suffer from degradation in air, which limits their practical applications. Here, we demonstrate successful passivation of the $MAPbI_3$ photodetectors through monochloro-para-xylylene (Parylene-C) deposition. The time-dependent photocurrent characteristics were systematically investigated, and we achieved significantly improved device performance and stability with Parylene-C passivation. Based on the excitation-power-dependent photoluminescence (PL) data, we confirmed that Parylene-C can reduce the carrier losses in $MAPbI_3$, leading to the enhancement of photocurrent and PL in $MAPbI_3$ photodetectors.

A Brief Review on Recent Developments in MAPbI3 Perovskite-Based Transistors

  • Padi, Siva Parvathi;Kim, Taeyong;Rabelo, Matheus;Yi, Junsin
    • 한국전기전자재료학회논문지
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    • 제34권5호
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    • pp.348-356
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    • 2021
  • Field-effect transistors (FETs) are the key elements of conventional electronics; hence, have drawn a lot of research and commercial interests. In recent years, metal halide perovskite materials have achieved a remarkable efficiency of 29.15% in the field of photovoltaics, and have drawn the scientific community's attention to promote their use in the field of optoelectronics, such as FETs and phototransistors. The MAPbI3 (methylammonium lead iodide) perovskite TFT has achieved a record hole mobility of 21.41 cm2/V-s in the year 2020. In this review, we will briefly discuss the physical structure of MAPbI3 perovskite and the essential factors that stimulate these devices, together with the role of defects, the ion migration concept, and the implication of both dielectric and electrode materials on the device's performance.

Optical Characterization of Cubic and Pseudo-cubic Phase Perovskite Single Crystals Depending on Laser Irradiation Time

  • Byun, Hye Ryung;Jeong, Mun Seok
    • Applied Science and Convergence Technology
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    • 제27권2호
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    • pp.42-45
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    • 2018
  • Photovoltaic and optoelectronic devices based on hybrid metal halide perovskites ($MAPbX_3$; $MA=CH_3NH_3{^+}$, $X=Cl^-$, $Br^-$, or $I^-$) are rapidly improving in power conversion efficiency. Also, during recent years, perovskite single crystals have emerged as promising materials for high-efficiency photovoltaic and optoelectronic devices because of their low defect density. Here we show that the light soaking effect of mixed halide perovskite ($MAPbBr_{3-x}I_x$) single crystals can be explained using photoluminescence, time-resolved photoluminescence, and Raman scattering measurements. Unlike Br-based single crystal, Br/I mixed single crystal show a strong light soaking effect under laser irradiation condition that was related to the existence of multiple phases.