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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Reversible Enlargement of Photoswitchable Dielectric Properties by Plasmonic [60]Fullerenyl Core-Shell Nanoparticles on Graphene Nanosheets
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Reversible Enlargement of Photoswitchable Dielectric Properties by Plasmonic [60]Fullerenyl Core-Shell Nanoparticles on Graphene Nanosheets

机译:Prophene Nanoshs上的富烯基核心 - 壳纳米粒子可逆地放大光学性介电特性

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摘要

Utilization of [60]fullerosome monolayer grafting approach on both sides of graphene nanosheets giving the corresponding sandwiched nanostructures was demonstrated as a key intermediate for the construction of photoswitchable and tunable dielectric graphene nanosheet materials. They were covered by magnetic plasmonic core-shell nanoparticles of gamma-FeOx@AuNP and light-harvesting C-60(>DPAF-C-9) monoadduct conjugates as the shell layer via a subsequent deposition procedure. Resulting multilayered core-shell nanosheet materials were found to be capable of inducing reversible dielectric property amplification effects in a photoswitching manner in the radio frequency (RF) range of 1.0-18 GHz. They were also found to be RF-wave-absorbing materials that led to the observation of minimum reflection coefficient values (low -dB). We substantiated these photophysical properties by relative dielectric (epsilon r') measurements and related applications using a combination of bistatic angle (theta)-, frequency-, and irradiation-time-dependent measurements. Specifically, we investigated the photoinduced changes of relative dielectric characteristics as a result of accumulated surface plasmon resonance (SPR) energy at the core-shell interlayers in a nanoscale toward potential morphological modulation of RF signals by photoswitching tunability of reflectivity.
机译:利用[60]石墨烯纳米片两侧的全体组单层移植方法,其给予相应的夹层纳米结构的临床纳米结构被证明是用于构建光学和可调电介质石墨烯纳米片材料的关键中间体。它们被γ-Feox @ AUNP的磁性等离子体核心 - 壳纳米颗粒覆盖,并通过随后的沉积过程作为壳层的壳层的光收获C-60(> DPAF-C-9)单变缀合物。得到了多层核 - 壳纳米片材料,能够在1.0-18GHz的射频(RF)范围内以照片开关方式诱导可逆介电性能扩增效应。它们也被发现是RF波吸收材料,导致了观察最小反射系数值(低-dB)。我们使用相对电介质(epsilon R')测量和相关应用,使用双角膜(θ) - ,频率和辐射时间依赖的测量来实现这些光物理性质。具体地,我们通过在纳米级的核 - 壳层间在纳米级朝向RF信号的潜在形态调制中,研究了相对介电特性的光突出变化通过光学开养可调性的反射率。

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