Semiconductive Coordination Polymer with Multi-Channel Charge Transfer for High-Performance Direct X-ray Detection

Coordination polymers (CPs) are promising for direct X-ray detection and imaging owing to higher designability and outstanding stability, however, it remains a challenge to achieve highly X-ray detection performance, particularly both high sensitivity and low detection limit at the same operating vo...

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Veröffentlicht in:Angewandte Chemie International Edition 2024-12, p.e202419266
Hauptverfasser: Yu, Xiao-Qing, Sun, Li-Bo, Li, Qing-Yi, Wang, Bo-Lun, Wang, Ming-Sheng, Li, Ji-Yang, Guo, Guo-Cong, Yu, Ji-Hong
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Sprache:eng
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Zusammenfassung:Coordination polymers (CPs) are promising for direct X-ray detection and imaging owing to higher designability and outstanding stability, however, it remains a challenge to achieve highly X-ray detection performance, particularly both high sensitivity and low detection limit at the same operating voltage. Herein, we construct a new conjugated CP {[Co(BPTTz)(DIPA)] ⋅ DMA} (1, BPTTz=2,5-bis(pyridine-4-yl)thiazolo[5,4-d]thiazole, H DIPA=2,5-diiodoterephthalic acid, DMA=N, N'-dimethylacetamide), with multi-channel charge transfer by regulating the linker mediated electronic-state, which reduces carrier losses resulting from recombination or quenching, enhances the efficiency of charge separation and transfer, thus further optimizes X-ray detection performance. The semiconductor prepared based on this strategy achieves record values including the highest mobility-lifetime product (μτ, 8.05×10  cm  V ) and the lowest detectable X-ray dose rate (128 nGy  S , 35 V) among CP-based direct radiation detectors, as well as a high sensitivity (172 μC Gy  cm , 35 V) at the same operating voltage. This detector shows excellent long-time air stability under ambient conditions for over three months and operational stability. These findings demonstrate a rational structural design method to enhance the photoelectronic efficiency and stability of semiconductive CPs.
ISSN:1433-7851
1521-3773
1521-3773
DOI:10.1002/anie.202419266