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首页> 外文期刊>RSC Advances >Thermal activation of charge carriers in ionic and electronic semiconductor β-AgIVVO3 and β-AgIVVO3@VV1.6VIV0.4O4.8 composite xerogels
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Thermal activation of charge carriers in ionic and electronic semiconductor β-AgIVVO3 and β-AgIVVO3@VV1.6VIV0.4O4.8 composite xerogels

机译:离子和电子半导体β-agivvo3和β-agivvo3和β-agivvo3 @ vv1.6viv0.4o4.8复合Xerogels的热激活电荷载体

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Silver vanadium oxide (SVO) and Silver Vanadium Oxide/Vanadium Oxide (SVO@VO) composite hydrogels are formed from the self-entanglement of β-AgVO _(3) nanoribbons and slightly reduced vanadium oxide (VO) (V ~(V) _(1.6) V ~(IV) _(0.4) O _(4.8) ) nanoribbons; respectively. Starting from randomly distributed nanoribbons within hydrogels, and after a controlled drying process, a homogeneous xerogel system containing tuneable SVO?:?VO ratios from 1?:?0 to 1?:?1 can be obtained. The precise nanoribbons compositional control of these composite system can serve as a tool to tune the electrical properties of the xerogels, as it has been demonstrated in this work by impedance spectroscopy (IS) experiments. Indeed, depending on the composition and temperature conditions, composite xerogels can behave as electronic, protonic or high temperature ionic conductors. In addition, the electric and protonic conductivity of the composite xerogels can be enhanced (until a critical irreversible point), through the temperature triggered charge carrier creation. As concluded from thermogravimetry, IR, UV-Vis and EPR spectroscopy studies, besides the SVO?:?VO ratio, the thermal induced oxidation/reduction of V ~(5+) to V ~(4+) , and thermally triggered release of strongly bonded water molecules at the nanoribbon surface are the two key variables that control the electric and ionic conduction processes within the SVO and composite SVO/VO xerogels.
机译:氧化银钒(SVO)和银钒氧化物/氧化钒(SVO @ VO)复合水凝胶是由β-AGVO _(3)纳米的自缠结和略微减少的氧化钒(VO)(V〜(V) _(1.6)v〜(iv)_(0.4)o _(4.8))纳米波堡;分别。从水凝胶中的随机分布的纳米开始,并在受控干燥过程之后,含有可调调谐SVO的均匀Xerogel系统?:ΔVO比率从1?:?0到1?:α1可以获得。这些复合系统的精确纳米纤维组成控制可以用作调谐Xerogels的电性能的工具,因为它已经通过阻抗光谱(IS)实验在这项工作中进行了证明。实际上,根据组合物和温度条件,复合Xerogels可以表现为电子,质子或高温离子导体。另外,通过温度触发的电荷载体产生,可以增强复合Xerogels的电和质子电导率(直到临界不可逆点)。除了SVO的热重量,IR,UV-VI和EPR光谱研究中,除了SVO吗?:ΔVO比,VOγ的热诱导/减少V〜(5+)至V〜(4+),以及热触发的释放纳米孔表面的强键合水分子是控制SVO和复合SVO / VO Xerogels内的电和离子传导过程的两个关键变量。

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