Kumar Jayasree, Parimi Divya S, Khan Salman, Panneerselvam Rajapandiyan, Suresh Anil K
Raman Research Laboratory (RARE Lab), Department of Chemistry, SRM University-AP, Amaravati-522503, India.
Bionanotechnology and Sustainable Laboratory, Department of Biological Sciences, SRM University-AP, Amaravati-522503, India.
Anal Methods. 2025 Jun 19;17(24):4951-4960. doi: 10.1039/d4ay02161d.
Natural materials with anomalous molecular machinery and hierarchies are gaining tremendous recognition in the pursuit of environmentally friendly, sustainable supports noble metal anchoring for the analysis of organic pollutants. Herein, for the first time, we demonstrate the biofabrication of AuNPs stringently tethered within snipped human nails, materialised by the hydroxy amino acids structured within the collagenous nail, which exhibit high reductive potential and Au affinity. Material characterization revealed a firm assemblage of large truncated AuNPs, including triangles, pentagons, hexagons and octagons of sizes between ∼80 and 150 nm, embedded within the highly rigid and compact three-dimensional nail, ensuring durability, shelf-life and stability against diverse physicochemical environments. Furthermore, large truncated AuNPs with sharp edges can intensify localized electromagnetic fields as "" for the direct SERS detection of organic analytes. This is validated by exposing real dye adulterants at nanomolar regimes, detecting acid orange at concentrations of 0.173-0.206 ppm in red chillies (spice) and 0.087-0.140 ppm of malachite green in green peas (pulse) collected from three distantly far vegetable markets in a radius of ∼37.28 miles. Overall, we present a highly stable, human nail waste biofabricated Au bio-substrate as a sustainable and generalized sensing technique for the identification and quantification of unsafe molecular adulterants in food samples using SERS.
在寻求用于有机污染物分析的环境友好、可持续贵金属锚定载体的过程中,具有异常分子机制和层次结构的天然材料正获得广泛认可。在此,我们首次展示了严格束缚于剪碎人指甲内的金纳米颗粒(AuNPs)的生物制造过程,这是由胶原质指甲内结构的羟基氨基酸实现的,这些羟基氨基酸展现出高还原电位和对金的亲和力。材料表征显示,在高度刚性和致密的三维指甲内紧密组装着大量截顶的金纳米颗粒,包括尺寸在约80至150纳米之间的三角形、五边形、六边形和八边形,确保了在各种物理化学环境下的耐久性、保质期和稳定性。此外,具有尖锐边缘的大截顶金纳米颗粒可增强局部电磁场,用于直接表面增强拉曼光谱(SERS)检测有机分析物。通过检测从半径约37.28英里范围内三个相距甚远的蔬菜市场采集的红辣椒(香料)中浓度为0.173 - 0.206 ppm的酸性橙和青豆(豆类)中浓度为0.087 - 0.140 ppm的孔雀石绿等实际染料掺假物,验证了这一点。总体而言,我们展示了一种高度稳定的、由人指甲废料生物制造的金生物基底,作为一种可持续且通用的传感技术,用于使用SERS识别和定量食品样品中不安全的分子掺假物。