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Hydrophobic long-chain two-dimensional perovskite scintillators for underwater X-ray imaging
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作者 Jin-Xiao Zheng Zi-An Zhou +6 位作者 Tiao Feng Hui Li cheng-hua sun NüWang Yang Tian Yong Zhao Shu-Yun Zhou 《Rare Metals》 SCIE EI CAS CSCD 2024年第1期175-185,共11页
The underwater X-ray imaging technology development is significant to subaqueous target reconnaissance/detection/identification, subfluvial archaeology,submerged resource exploration, etc. As the core of X-ray imaging... The underwater X-ray imaging technology development is significant to subaqueous target reconnaissance/detection/identification, subfluvial archaeology,submerged resource exploration, etc. As the core of X-ray imaging detection, the scintillator has been plagued by inherent moisture absorption and decomposition, and strict requirements for seamless packaging and waterproofing.Here, we designed a manganese-doped two-dimensional(2D) perovskite scintillator modified by hydrophobic longchain organic amine through the combination of component and doping engineering. The modified perovskites show high water repellency that can be used as an underwater X-ray scintillator. X-ray images of aquatic organisms or other objects with a high spatial resolution of10 lp·mm^(-1) at a big view field(32 mm × 32 mm) were obtained by scintillation screen. This hydrophobic perovskite scintillator based on molecular design is of great promise in underwater X-ray nondestructive testing technology development. 展开更多
关键词 Two-dimensional perovskite HYDROPHOBIC SCINTILLATORS Underwater X-ray imaging Underwater nondestructive testing technology
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Computational analysis of apatite-type compounds for band gap engineering: DFT calculations and structure prediction using tetrahedral substitution
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作者 Hai-Kun Liu Li-Bing Liao +7 位作者 Yuan-Yuan Zhang Sergey MAksenov Ning Liu Qing-Feng Guo Dina V.Deyneko Tian-Yi Wang Le-Fu Mei cheng-hua sun 《Rare Metals》 SCIE EI CAS CSCD 2021年第12期3694-3700,共7页
Mineral apatite compounds have attracted significant interest due to their chemical stability and adjustable hexagonal structure,which makes them suitable as new photovoltaic functional materials.The band gap of natur... Mineral apatite compounds have attracted significant interest due to their chemical stability and adjustable hexagonal structure,which makes them suitable as new photovoltaic functional materials.The band gap of natural apatite is ~5.45 eV,and such a large value limits their applications in the field of catalysis and energy devices.In this research,we designed a method to narrow the band gap via the tetrahedral substitution effect in apatite-based compounds.The density functional theory(DFT) and experimental investigation of the electronic and optical properties revealed that the continuous incorporation of [MO_(4)]^(4-) tetrahedrons(M=Si,Ge,Sn,and Mn) into the crystal lattice can significantly reduce the band gap.In particular,this phenomenon was observed when the[MnO_(4)]^(4-) tetrahedron replaces the [PO_(4)]^(4-) tetrahedron because of the formation of a Mn 3 d-derived conduction band minimum(CBM) and interacts with other elements,leading to band broadening and obvious reduction of the band gap.This approach allowed us to propose a novel scheme in the band gap engineering of apatite-based compounds toward an entire spectral range modification. 展开更多
关键词 APATITE Density functional theory(DFT) Band gap engineering Structure prediction Tetrahedral substitution
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