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Synthesis of Cellulose Nanofibril Bound Silver Nanoprism for Surface Enhanced Raman Scattering

机译:用于表面增强拉曼散射的纤维素纳米原纤束缚银纳米棱镜的合成

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Silver nanoprisms (AgNPs) were robustly synthesized using TEMPO-oxidized cellulose nanofibrils (CNFs) as a dual capping and shape-regulating agent for the first time. Reducing AgNO3 with NaBH., in CNF suspensions produced smaller but more uniform Ag nanospheres (AgNSs) with increasing AgVCNF ratios. CNF bound AgNSs were facilely transformed to AgNPs by etching with H2O2, supporting the capping and shape-regulating capability of CNFs. AgNPs could also be synthesized direcdy in a one-shot reduction reaction with NaBH4 in the presence of both CNFs and H2O2. The AgNPs transformed from CNF bound AgNSs are similar to those synthesized directly, but more stable against H2O2. Successful synthesis of AgNPs with 80-320 nm truncated edges was confirmed by light blue solution color, sharp out-of-plane quadruple resonance peak at 334 nm and prominent in-plane dipole resonance peaks at 762-900 nm. The [111] lattice plane of AgNP was clearly evident by its predominant XRD peak at 38°, confirming the unique shape-regulating ability of the nearly fully surface carboxylated CNFs. The CNF surface bound AgNPs were easily fabricated into freestanding CNF/AgNPs films that showed excellent surface enhanced Raman scattering of Rhodamine 6G with analytical enhancement factor of 5 X 103 in contrast to none from the CNF/AgNSs film.
机译:首次使用TEMPO氧化的纤维素纳米原纤维(CNF)作为双重封端剂和形状调节剂,稳健地合成了银纳米棱镜(AgNPs)。在CNF悬浮液中,用NaBH。还原AgNO3会产生较小但更均匀的Ag纳米球(AgNSs),且AgVCNF比率会增加。通过用H2O2蚀刻,将CNF结合的AgNSs容易地转化为AgNPs,从而支持CNF的封盖和形状调节能力。 AgNPs也可以在CNF和H2O2均存在下与NaBH4一次性还原反应中直接合成。由CNF结合的AgNS转化的AgNP与直接合成的AgNP相似,但对H2O2更为稳定。浅蓝色溶液颜色,334 nm处的清晰平面外四重共振峰和762-900 nm处的平面内偶极共振峰证实了具有80-320 nm截短边缘的AgNP的成功合成。 AgNP的[111]晶格平面通过其在38°处的主要XRD峰清晰可见,证实了几乎完全表面羧化的CNF的独特形状调节能力。 CNF表面结合的AgNPs很容易制成独立的CNF / AgNPs薄膜,与CNF / AgNSs薄膜相比,罗丹明6G的表面增强拉曼散射表现出出色的拉曼散射,分析增强因子为5 X 103。

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