利用PBDB-T:ITIC和CdSe核心二维纳米血小板混合有源层增强x射线探测灵敏度

IF 4.4 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Jaewon Son, Jehoon Lee, Chanyeol Lee, Jungwon Kang
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引用次数: 0

摘要

本研究将CdSe纳米片(NPLs)的高性能杂化x射线探测器(PBDB-T)(聚[[4,8-双[5-(2-乙基己基)-2-噻吩基]苯并[1,2-b:4,5-b ']二噻吩-2,6-二基]-2,5-噻吩二基[5,7-双(2-乙基己基)-4,8-二氧基- 4h, 8h -苯并[1,2-c:4,5-c ']二噻吩-1,3-二基]]聚合物):ITIC(2,2 ' -[6,6,12,12-四(4-己基苯基)-6,12-二氢二噻吩[2,3-d:2 ',3 ' -d ']-s-茚二诺[1,2-b:5,6-b ']二噻吩-2,8-二基]二[甲基苯基(3-氧- 1h -茚-2,1(3H)-二苯基)]]二[丙二腈])有机半导体基质。有机半导体具有灵活性和低成本制造等优点,但其有限的x射线灵敏度限制了其在辐射探测中的应用。为了克服这一问题,结合无机纳米材料(如CdSe纳米血小板)的杂化活性层已成为提高性能的有希望的候选材料。在精确的厚度控制下合成了5层CdSe NPLs,在556 nm处具有较强的吸收和光致发光,与CsI(Tl)闪烁体的发射光谱相匹配。通过研究不同PBDB-T:ITIC比率和CdSe不良贷款浓度,对杂化活性层进行了优化。当PBDB-T:ITIC的比例为1:1,CdSe NPLs的比例为1.5 mg时,器件的功率转换效率为7.18%,光电流密度为18.74 mA/cm−2。与纯有机器件相比,CdSe NPLs的掺入使x射线探测器的灵敏度提高了31.9%,达到1.86 mA/Gy cm−2。这种增强的性能归因于杂化活性层的光吸收和电荷输运性能的改善,尽管表面粗糙度略有增加。这项工作证明了有机-无机混合系统在下一代x射线探测应用中的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Enhancing X-Ray Detection Sensitivity Through Hybrid Active Layers of PBDB-T:ITIC and CdSe Core 2D Nanoplatelets

Enhancing X-Ray Detection Sensitivity Through Hybrid Active Layers of PBDB-T:ITIC and CdSe Core 2D Nanoplatelets

Enhancing X-Ray Detection Sensitivity Through Hybrid Active Layers of PBDB-T:ITIC and CdSe Core 2D Nanoplatelets

Enhancing X-Ray Detection Sensitivity Through Hybrid Active Layers of PBDB-T:ITIC and CdSe Core 2D Nanoplatelets

Enhancing X-Ray Detection Sensitivity Through Hybrid Active Layers of PBDB-T:ITIC and CdSe Core 2D Nanoplatelets

In this study a high-performance hybrid X-ray detector incorporating CdSe nanoplatelets (NPLs) is presented into a PBDB-T(Poly[[4,8-bis[5-(2-ethylhexyl)-2-thienyl]benzo[1,2-b:4,5-b′]dithiophene-2,6-diyl]-2,5-thiophenediyl[5,7-bis(2-ethylhexyl)-4,8-dioxo-4H,8H-benzo[1,2-c:4,5-c′]dithiophene-1,3-diyl]]polymer):ITIC (2,2′-[[6,6,12,12-Tetrakis(4-hexylphenyl)-6,12-dihydrodithieno[2,3-d:2′,3′-d′]-s-indaceno[1,2-b:5,6-b′]dithiophene-2,8-diyl]bis[methylidyne(3-oxo-1H-indene-2,1(3H)-diylidene)]]bis[propanedinitrile])organic semiconductor matrix. Organic semiconductors offer advantages such as flexibility and low-cost fabrication, but their limited X-ray sensitivity restricts their application in radiation detection. To overcome this, hybrid active layers incorporating inorganic nanomaterials such as CdSe nanoplatelets have emerged as promising candidates for enhancing performance. The 5-monolayer CdSe NPLs are synthesized with precise thickness control, exhibiting strong absorption and photoluminescence at 556 nm, which effectively matches the emission spectrum of CsI(Tl) scintillators. The hybrid active layer is optimized by investigating various PBDB-T:ITIC ratios and CdSe NPLs concentrations. The optimal device configuration, achieved with a 1:1 ratio of PBDB-T:ITIC and 1.5 mg of CdSe NPLs, demonstrates a power conversion efficiency of 7.18% and a photocurrent density of 18.74 mA/cm2. The incorporation of CdSe NPLs enhanced the X-ray detector's sensitivity by 31.9% compared to the pure organic device, reaching 1.86 mA/Gy cm2. The enhanced performance is attributed to the improved light absorption and charge transport properties of the hybrid active layer, despite a slight increase in surface roughness. This work demonstrates the potential of organic–inorganic hybrid systems for next-generation X-ray detection applications.

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来源期刊
Advanced Materials Interfaces
Advanced Materials Interfaces CHEMISTRY, MULTIDISCIPLINARY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
8.40
自引率
5.60%
发文量
1174
审稿时长
1.3 months
期刊介绍: Advanced Materials Interfaces publishes top-level research on interface technologies and effects. Considering any interface formed between solids, liquids, and gases, the journal ensures an interdisciplinary blend of physics, chemistry, materials science, and life sciences. Advanced Materials Interfaces was launched in 2014 and received an Impact Factor of 4.834 in 2018. The scope of Advanced Materials Interfaces is dedicated to interfaces and surfaces that play an essential role in virtually all materials and devices. Physics, chemistry, materials science and life sciences blend to encourage new, cross-pollinating ideas, which will drive forward our understanding of the processes at the interface. Advanced Materials Interfaces covers all topics in interface-related research: Oil / water separation, Applications of nanostructured materials, 2D materials and heterostructures, Surfaces and interfaces in organic electronic devices, Catalysis and membranes, Self-assembly and nanopatterned surfaces, Composite and coating materials, Biointerfaces for technical and medical applications. Advanced Materials Interfaces provides a forum for topics on surface and interface science with a wide choice of formats: Reviews, Full Papers, and Communications, as well as Progress Reports and Research News.
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