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|a 10.1002/adma.202407244
|2 doi
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|a pubmed24n1616.xml
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|a (DE-627)NLM37850245X
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|a (NLM)39363637
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|a DE-627
|b ger
|c DE-627
|e rakwb
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|a eng
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|a Tan, Pengju
|e verfasserin
|4 aut
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|a Flexible Soft X-Ray Image Sensors based on Metal Halide Perovskites With High Quantum Efficiency
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|c 2024
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|a Text
|b txt
|2 rdacontent
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|a ƒaComputermedien
|b c
|2 rdamedia
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|a ƒa Online-Ressource
|b cr
|2 rdacarrier
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|a Date Revised 28.11.2024
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|a published: Print-Electronic
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|a Citation Status PubMed-not-MEDLINE
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|a © 2024 Wiley‐VCH GmbH.
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|a Soft X-ray imaging is a powerful tool to explore the structure of cells, probe material with nanometer resolution, and investigate the energetic phenomena in the universe. Conventional soft X-ray image sensors are by and large Si-based charge coupled devices that suffer from low frame rates, complex fabrication processes, mechanical inflexibility, and required cooling below -60 °C. Here, a soft X-ray photodiode is reported based on low-cost metal halide perovskite with comparable performance to commercial Si-based device. Nanothrough network electrode minimized the optical loss due to the shadowing of insensitive layers, while a multidimensional perovskite heterojunction is generated to reduce the photo-generated carrier loss. This strategy promoted a record quantum efficiency of 8 × 103% without cooling, several orders of magnitude greater than the previously achieved. Flexible and curved soft X-ray imaging arrays are fabricated based on this high-performance device structure, demonstrating stable soft X-ray response and sharp imaging capabilities. This work highlights the low-cost and efficient perovskite photodiode as a strong candidate for the next-generation soft X-ray image sensors
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|a Journal Article
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|a X‐ray detector
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|a flexible substrate
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|a image array
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|a metal halide perovskite
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|a soft X‐ray
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|a Liu, Tianyu
|e verfasserin
|4 aut
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|a Yang, Yuqian
|e verfasserin
|4 aut
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|a Chen, Yuangan
|e verfasserin
|4 aut
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|a Guan, Yong
|e verfasserin
|4 aut
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|a Li, Zidu
|e verfasserin
|4 aut
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|a Yu, Shunjie
|e verfasserin
|4 aut
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|a Yang, Xunyong
|e verfasserin
|4 aut
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|a Xiang, Xueqiang
|e verfasserin
|4 aut
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|a Zhao, Xiaolong
|e verfasserin
|4 aut
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|a Li, Yu
|e verfasserin
|4 aut
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|a Ding, Honghe
|e verfasserin
|4 aut
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|a Wu, Xuefei
|e verfasserin
|4 aut
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1 |
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|a Fink, Zachary
|e verfasserin
|4 aut
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|a Gao, Shuang
|e verfasserin
|4 aut
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|a Hou, Xiaohu
|e verfasserin
|4 aut
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|a Jiao, Xuechen
|e verfasserin
|4 aut
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|a Zhu, Junfa
|e verfasserin
|4 aut
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|a Fan, Fengjia
|e verfasserin
|4 aut
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|a Yang, Shangfeng
|e verfasserin
|4 aut
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1 |
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|a Russell, Thomas P
|e verfasserin
|4 aut
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|a Liu, Xiaosong
|e verfasserin
|4 aut
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|a Hu, Qin
|e verfasserin
|4 aut
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|a Long, Shibing
|e verfasserin
|4 aut
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|i Enthalten in
|t Advanced materials (Deerfield Beach, Fla.)
|d 1998
|g 36(2024), 48 vom: 03. Nov., Seite e2407244
|w (DE-627)NLM098206397
|x 1521-4095
|7 nnns
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|g volume:36
|g year:2024
|g number:48
|g day:03
|g month:11
|g pages:e2407244
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|u http://dx.doi.org/10.1002/adma.202407244
|3 Volltext
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|d 36
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