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Time-resolved fluorescence and UV absorbance study on Elaeis guineensis/oil palm leaf based carbon nanoparticles doped in nematic liquid crystals

机译:在向列液晶中掺杂的eLaeisGuineensis /油棕榈叶基碳纳米粒子的时间分辨荧光和紫外光吸收研究

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Time resolved fluorescence measurement and UV absorbance study on oil palm leaf based nanoparticles (OPL) doped with nematic liquid crystal E 48 in 0.1, 0.2 and 0.3 wt/wt% concentration abbreviated as mixture 1 (MIX 1), mixture 2 (MIX 2) and mixture 3 (MIX 3) were conducted. OPL biomolecule loaded graphene oxide nematic E 48 liquid crystal systemhas been fabricated for biosensor application. The interaction of OPL nanoparticles with E 48 nematic liquid crystal having different concentration of nanoparticles has been explored. Pure nematic E 48 and its doped system have been examined by time- resolved fluorescence spectroscopy (TRFS) technique. Variation in the nanoparticles concentration strappingly affects the fluorescence emissions. Lack of Forster resonance energy transfer (FRET) was found in all composites. This manuscript unveils the purpose of a range of factors, such as dipolar interface between donor and acceptor molecules, nanoparticles orientation and its proximity distance that may be accountable for the non-appearance of FRET. Nematic nanoparticles doped system forms an antique composition of luminescent material even though the fluorescence characteristics of host are customized in the existence of nanoparticles by themolecular alignmentmodification. Variation in lifetimes of nematic nanoparticles doped system has been observed. These results find its applicability in photonic displays, photovoltaic devices, biosensors etc. (C) 2020 Published by Elsevier B.V.
机译:在0.1,0.2和0.3wt / wt%浓度中掺杂掺杂掺杂的油棕榈叶基纳米粒子(OPL)的荧光测量和UV吸光度研究掺杂0.1,0.2和0.3wt / wt%浓度为混合物1(混合物1),混合物2(混合物2)进行混合物3(混合物3)。 OPL生物分子负载的石墨烯氧化物甲烷型Ematic E 48用于生物传感器应用的液晶系统。已经探讨了OP1纳米颗粒与具有不同浓度纳米颗粒的甲型液晶的OP1纳米颗粒的相互作用。已经通过时间分辨的荧光光谱(TRFS)技术检查了纯甲型E 48及其掺杂系统。纳米颗粒浓度的变异地搅拌地影响荧光排放。在所有复合材料中发现缺乏福尔斯特共振能量转移(FRET)。该稿件推出了一系列因素的目的,例如供体和受体分子之间的双极界面,纳米粒子取向及其接近距离,这可能对FRET的非外观负责。向甲型纳米颗粒掺杂系统形成发光材料的古色古香的组合物,即使宿主的荧光特性通过分子对准疗法在纳米颗粒的存在中定制。已经观察到向列纳米颗粒掺杂系统的寿命的变化。这些结果在Elsevier B.V发布的光子显示器,光伏器件,生物传感器等中的适用性。(c)2020

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