光伏太阳能电池板中分离的velezensis KKWHNGU1纳米银颗粒的生物合成及其潜在应用

IF 3.8 4区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES Water, Air, & Soil Pollution Pub Date : 2025-01-09 DOI:10.1007/s11270-025-07743-3
Kuldeep Luhana, Bhakti Patel, Janvi Patel, Santosh Kumar Sahu, Mohd Abul Kalam, Rabbani Syed, Nisha Choudhary, Virendra Kumar Yadav, Ashish Patel
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引用次数: 0

摘要

光伏(PV)太阳能电池板上的细菌已经适应了脱水、温度波动和阳光。在目前的研究中,从光伏太阳能电池板中分离出一株芽孢杆菌velezensis KKWHNGU1并对其进行了表征。该菌株表现出对酸性pH (pH 5)、盐(1-9% w/v)、紫外线辐射(约8分钟)和高达55°C的温度的抗性。利用该菌株通过绿色合成方法合成了银纳米粒子。采用串联质谱-液相色谱(LC-MS)进行代谢组学分析,检测乙酸乙酯提取物中2-羟基-3-甲基十六烷醇辅酶a、Lapachol、催产素、二十烷醇辅酶a、3-羟基异七烷醇辅酶a等物质。AgNPs的合成得到了紫外可见光谱的证实,在430 nm和492nm处出现了峰值,并通过FTIR鉴定了官能团。XRD分析显示,AgNPs在27.9°、32.2°和46.3°处有三个高强度峰,表明AgNPs的结晶形态。扫描电子显微镜(SEM)显示AgNPs为球形,尺寸为87 nm,而EDX检测证实所制备的AgNPs含有84.10%的Ag。抗菌活性测试表明,对金黄色葡萄球菌(12毫米的抑制区)的效果最大,其次是粘质沙雷氏菌、巨型葡萄球菌(各9毫米)和大肠杆菌(8毫米),浓度为1毫克。AgNPs还表现出抗生素去除能力,在10 ppm浓度下,接触时间为100 min,头孢氨苄的去除效率最高为80.85%。在更高浓度下,去除效率下降(30 ppm为57.69%,50 ppm为12.97%)。这些发现提示了合成的AgNPs在水处理和生物医学领域的潜在应用。
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Biogenic Synthesis and Potential Applications of Nano-Ag Particles from Bacillus velezensis KKWHNGU1 Isolated from Photovoltaic Solar Panel

Bacteria on photovoltaic (PV) solar panels have adapted to dehydration, temperature fluctuations, and sunlight. In the current study, a bacterial strain, Bacillus velezensis KKWHNGU1, was isolated from a photovoltaic solar panel and characterized. The strain demonstrated resistance to acidic pH (pH 5), salt (1–9% w/v), UV radiation (approximately 8 min), and temperatures of up to 55 °C. Silver nanoparticles (AgNPs) were synthesized using this strain via a green synthesis approach. Tandem mass spectrometry with liquid chromatography (LC–MS) was used to perform metabolomics, which detected substances such as 2-Hydroxy-3-methylhexadecanoyl CoA, Lapachol, Oxytocin, Icosanoyl-CoA, 3-hydroxyisoheptadecanoyl-CoA, etc. in ethyl acetate extracts. AgNPs synthesis was confirmed by UV–visible spectroscopy, which showed wavelength peaks around 430 and 492 nm, and functional groups were identified based on FTIR. XRD analysis revealed three high-intensity peaks at 27.9°, 32.2°, and 46.3°, demonstrating the crystalline form of AgNPs. According to Scanning electron microscopy (SEM), the AgNPs were spherical and had a regular size of 87 nm, whereas EDX examination confirmed that the produced AgNPs contained 84.10 wt.% Ag. Antimicrobial activity testing demonstrated maximum efficacy against Staphylococcus aureus (12 mm zone of inhibition), followed by Serratia marcescens, Priestia megaterium (9 mm each), and Escherichia coli (8 mm) at a concentration of 1 mg. The AgNPs also exhibited antibiotic removal capabilities, with a maximum cephalexin removal efficiency of 80.85% at a 10 ppm concentration over a contact time of 100 min. The removal efficiency decreased at higher concentrations (57.69% at 30 ppm and 12.97% at 50 ppm). These findings suggest potential applications of the synthesized AgNPs in water treatment and biomedical fields.

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来源期刊
Water, Air, & Soil Pollution
Water, Air, & Soil Pollution 环境科学-环境科学
CiteScore
4.50
自引率
6.90%
发文量
448
审稿时长
2.6 months
期刊介绍: Water, Air, & Soil Pollution is an international, interdisciplinary journal on all aspects of pollution and solutions to pollution in the biosphere. This includes chemical, physical and biological processes affecting flora, fauna, water, air and soil in relation to environmental pollution. Because of its scope, the subject areas are diverse and include all aspects of pollution sources, transport, deposition, accumulation, acid precipitation, atmospheric pollution, metals, aquatic pollution including marine pollution and ground water, waste water, pesticides, soil pollution, sewage, sediment pollution, forestry pollution, effects of pollutants on humans, vegetation, fish, aquatic species, micro-organisms, and animals, environmental and molecular toxicology applied to pollution research, biosensors, global and climate change, ecological implications of pollution and pollution models. Water, Air, & Soil Pollution also publishes manuscripts on novel methods used in the study of environmental pollutants, environmental toxicology, environmental biology, novel environmental engineering related to pollution, biodiversity as influenced by pollution, novel environmental biotechnology as applied to pollution (e.g. bioremediation), environmental modelling and biorestoration of polluted environments. Articles should not be submitted that are of local interest only and do not advance international knowledge in environmental pollution and solutions to pollution. Articles that simply replicate known knowledge or techniques while researching a local pollution problem will normally be rejected without review. Submitted articles must have up-to-date references, employ the correct experimental replication and statistical analysis, where needed and contain a significant contribution to new knowledge. The publishing and editorial team sincerely appreciate your cooperation. Water, Air, & Soil Pollution publishes research papers; review articles; mini-reviews; and book reviews.
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