電気化学的穴内注入は,混合ハリドペロブスキートフィルムからヨウ素を選択的に排出する
Gergely F Samu1,2,3, Ádám Balog1, Filippo De Angelis4,5,6
1Department of Physical Chemistry and Materials Science, Interdisciplinary Excellence Centre , University of Szeged , Rerrich Square 1 , Szeged , H-6720 , Hungary.
Journal of the American Chemical Society
|July 2, 2019
まとめ
金属ハリドペロブスキットに穴が閉じ込められ,ヨウ素が排出され,ブロミドリヒドメインが形成されます. このハリドイオン移動はペロブスキート太陽電池の安定性と性能に影響します.
科学分野:
- 材料科学
- 固体化学
- 太陽光発電
背景:
- ハリドイオンの移動性は,金属ハリドペロブスキットの特性にとって極めて重要です.
- イオンの動きを理解することは デバイスの性能と安定性を向上させるための鍵です
研究 の 目的:
- ハリドイオンの移動性に対するホールトラッピングの影響を混合ハリドペロブスキットで調査する.
- ヨウ素排出のメカニズムとその影響について調べる
主な方法:
- 選択的な穴の注入のための電気化学的アノードバイアス.
- ダイナミックなプロセスを監視するために,一時的な吸収スペクトロスコーピー.
主要な成果:
- ヨウ素部位に穴を閉じ込めると,CH3NH3PbBr1.5I1.5膜からヨウ素が排出される (I2またはI3として).
- CH3NH3PbBr3ドメインと弱まったPb-I結合の形成に導きます.
- ヨウ素の放出により 欠陥の多い格子が生み出され 荷载体の再結合が加速されます
結論:
- 選択的なヨウ素流動性は,ペロブスキート薄膜の光誘導相分離を駆動する.
- この現象はペロブスキート製の太陽電池の運用安定性に重大な影響を及ぼします.
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