从蛋壳膜中合成微波增强碳点:在重金属离子传感、无应变指纹检测、紫外线屏蔽、食品包装和防伪方面的广泛应用

IF 4.9 2区 化学 Q2 CHEMISTRY, PHYSICAL
B. Ananda , B.R. Radha Krushna , S.C. Sharma , Kartik J. Salwe , Renu sharma , Priya Josson Akkara , A. Lovelin Jerald , J. Jayannan , K. Manjunatha , Sheng Yun Wu , H. Nagabhushana
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引用次数: 0

摘要

在这项研究中,一步式微波辐照工艺与氢氧化钠(NaOH)溶液相结合,可快速、简便地从蛋壳膜(ESM)灰烬中合成碳点(CD)。合成的碳点对 Fe3+ 具有极高的选择性,并具有出色的荧光 (FL),量子产率 (QY) 为 15.3%。利用合成 CD,灵敏的纳米探针可识别 0-350 μM(R2 = 0.9976)范围内的游离 Fe3+,检测限(LoD)为 0.281 μM。此外,CD 还具有低细胞毒性和生物相容性,因此可用于细胞内 Fe3+ 的检测。在 475 nm 激发波长下使用真实样品进行的调查显示,在实际应用方面取得了良好的结果。为了将分子数据转化为 FL 信号输出,还构建了一个多输入逻辑门。在 UV-A(93%)、UV-B(88%)、UV-C(98%)和高能蓝光(HEBL)(79%)区域,蓝色发光 CD 的紫外线阻隔率最高,而纯聚乙烯醇(PVA)在所有紫外线区域的吸收率不到 22-30%。将 CD 融合到聚合物中改善了 PVA 薄膜的热特性。此外,体外细胞活力测试表明,CD 嵌入 PVA 后不会对神经母细胞瘤细胞系(SH-SY-5Y)产生细胞毒性。作为易腐商品的范例,我们评估了 CD 和 PVA 对西红柿保质期的影响。根据长期监测研究的结果,新鲜西红柿涂上 CDs@PVA 和 PVA 后,重量和水分损失均有效减少。在室温下的近 36 天内,它还能显著减少真菌的生长,防止变质,同时保持水果原有的颜色和外观。在 365 纳米紫外线的激发下,这种光盘 FL 非常适合制作荧光油墨,以防止伪造。此外,该研究还探索了光盘作为发光指纹粉的特殊荧光特性,有助于检测各种表面上的潜伏指纹(LFP)。这项研究的结果凸显了具有成本效益且安全的光盘在一系列应用中的潜力,包括无细胞毒性紫外线阻隔、活性包装、Fe3+传感、指纹检测、防伪(AC)措施和柔性纳米复合(NC)薄膜。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microwave enhanced carbon dots synthesis from eggshell membrane: Versatile applications in heavy metal ion sensing, strain free detection of fingerprints, UV shielding, food packing and anti-counterfeiting
In this study, a one-step microwave irradiation process combined with a sodium hydroxide (NaOH) solution allowed for the quick and easy synthesis of carbon dots (CDs) from eggshell membrane (ESM) ashes. The resultant CDs demonstrated exceptional selectivity for Fe3+ and excellent fluorescence (FL) with a quantum yield (QY) of 15.3 %. Utilizing synthetic CDs, a sensitive nanoprobe is utilized to identify free Fe3+ within the 0–350 μM (R2 = 0.9976) range, with a 0.281 μM limit of detection (LoD). Additionally, the CDs were shown to be useful for intracellular Fe3+ detection applications because of their low cytotoxicity and biocompatibility. Investigations using real samples at 475 nm excitation wavelength showed promising results in terms of real-world application. In order to transform molecular data into FL signal outputs, a multi-input logic gate is also constructed. In the UV-A (93 %), UV-B (88 %), UV-C (98 %) and high energy blue light (HEBL) (79 %) regions, blue colour-emitting CDs had the maximum UV blockage, but pure polyvinyl alcohol (PVA) absorbed less than 22–30 % of the light in all UV regions. The integration of CDs into the polymer improved the thermal characteristics of the PVA film. Additionally, testing of in vitro cell viability demonstrated that the CDs, when embedded in the PVA, did not cause cytotoxicity to the Neuroblastoma cell line (SH-SY-5Y). As a paradigm for perishable commodities, the effects of CDs and PVA were assessed on the shelf life of tomatoes. When fresh tomatoes were coated with CDs@PVA and PVA, weight and moisture loss were effectively decreased, according to the results of the long-term monitoring study. Throughout almost 36 days at room temperature, it also dramatically reduced the growth of fungi and prevented spoiling, all the while maintaining the fruits original colour and appearance. The CDs FL under 365 nm UV light excitation makes them well-suited for creating fluorescent inks to deter counterfeiting. Additionally, the study explored the CDs exceptional FL properties for use as a luminescent fingerprint powder, aiding in the detection of latent fingerprints (LFPs) on various surfaces. The findings from this study highlight the potential of cost-effective and safe CDs for a range of applications, including non-cytotoxic UV blocking, active packaging, Fe3+ sensing, fingerprint detection, anti-counterfeiting (AC) measures and flexible nanocomposite (NC) films.
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来源期刊
CiteScore
8.70
自引率
9.60%
发文量
2421
审稿时长
56 days
期刊介绍: Colloids and Surfaces A: Physicochemical and Engineering Aspects is an international journal devoted to the science underlying applications of colloids and interfacial phenomena. The journal aims at publishing high quality research papers featuring new materials or new insights into the role of colloid and interface science in (for example) food, energy, minerals processing, pharmaceuticals or the environment.
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