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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >One-step freezing temperature crystallization of layered rare-earth hydroxide (Ln(2)(OH)(5)NO(3 center dot)nH(2)O) nanosheets for a wide spectrum of Ln (Ln = Pr-Er, and Y), anion exchange with fluorine and sulfate, and microscopic coordination probed via photoluminescence
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One-step freezing temperature crystallization of layered rare-earth hydroxide (Ln(2)(OH)(5)NO(3 center dot)nH(2)O) nanosheets for a wide spectrum of Ln (Ln = Pr-Er, and Y), anion exchange with fluorine and sulfate, and microscopic coordination probed via photoluminescence

机译:多层稀土氢氧化物(Ln(2)(OH)(5)NO(3中心点)nH(2)O)纳米片的一步冻结温度结晶,其光谱范围广(Ln = Pr-Er,并且Y),与氟和硫酸根的阴离子交换以及通过光致发光探测的微观配位

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摘要

Mass synthesis, without exfoliation, of Ln(2)(OH)(5)NO3 center dot nH(2)O layered rare-earth hydroxide (LRH, n similar to 1.2) nanosheets (down to similar to 3 nm thick, in the form of hydrangea-flower like assemblies) via chemical precipitation at the freezing temperature of similar to 4 degrees C was originally developed in this work for a wide spectrum of Ln (Ln = Pr, Nd, Sm, Eu, Gd, Tb, Dy, Y, Ho, and Er). The processing temperature was found to be low enough to effectively suppress the high activation-energy thickness growth of the LRH crystallites along the c-axis while high enough to crystallize the hydroxide main layers (the ab planes). Interlayer chemistry of the LRH nanosheets was explored via room temperature exchange of the interlayer NO3- (trigonal plane) with monovalent F- (sphere) and divalent SO42- (tetrahedron), and the basal spacing of the product was discussed from the geometric size/spatial orientation of the anions and also from anion-host interactions via electrostatic attraction and hydrogen bonding. Photoluminescence spectroscopies found substantially different behaviors for the anion exchanged products, characterized by the emergence of an additional charge transfer excitation band for LEuH and strong 4f(8) -> 4f(7)5d(1) inter-configurational excitation transition for LTbH, which have been ascribed to the generation of oxide-like coordination environments by the strong hydrogen bonding between the interlayer F-/SO42- and the hydroxyls/water in the hydroxide main layers. Greatly enhanced green emission was observed for the anion exchanged LTbH upon excitation with the 4f(8) -> 4f(7)5d(1) rather than the intra-4f(8) transitions of Tb3+.
机译:Ln(2)(OH)(5)NO3中心点nH(2)O层状稀土氢氧化物(LRH,n类似于1.2)纳米片(低至约3 nm厚)的纳米合成(不剥离)。最初在这项工作中针对宽范围的Ln(Ln = Pr,Nd,Sm,Eu,Gd,Tb,Dy, Y,Ho和Er)。发现处理温度足够低以有效抑制LRH微晶沿c轴的高活化能厚度增长,同时又足够高以使氢氧化物主层(ab平面)结晶。通过在室温下将层间NO3-(三角平面)与单价F-(球形)和二价SO42-(四面体)交换,研究了LRH纳米片的层间化学性质,并从几何尺寸/阴离子的空间取向以及通过静电吸引和氢键的阴离子-主体相互作用。光致发光光谱学发现,阴离子交换产物的行为大不相同,其特征是出现了LEuH附加的电荷转移激发带和LTbH的强4f(8)-> 4f(7)5d(1)构型激发跃迁。由于层间F- / SO42-和氢氧化物主层中的羟基/水之间的强氢键,已将其归因于氧化物状配位环境的产生。在用4f(8)-> 4f(7)5d(1)而不是Tb3 +的内部4f(8)跃迁激发后,阴离子交换的LTbH观察到极大增强的绿色发射。

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