期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
Bioleaching of vanadium from stone coal vanadium ore by Bacillus mucilaginosus:Influencing factors and mechanism
1
作者 Yingbo Dong jinyu zan Hai Lin 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS CSCD 2024年第8期1828-1838,共11页
Vanadium and its derivatives are used in various industries,including steel,metallurgy,pharmaceuticals,and aerospace engineering.Although China has massive reserves of stone coal resources,these resources have low gra... Vanadium and its derivatives are used in various industries,including steel,metallurgy,pharmaceuticals,and aerospace engineering.Although China has massive reserves of stone coal resources,these resources have low grades.Therefore,the effective extraction and recovery of metallic vanadium from stone coal is an important way to realize the efficient resource utilization of stone coal vanadium ore.Herein,Bacillus mucilaginosus was selected as the leaching strain.The vanadium leaching rate reached 35.5%after 20 d of bioleaching under optimal operating conditions.The cumulative vanadium leaching rate in the contact group reached 35.5%,which was higher than that in the noncontact group(9.3%).The metabolites of B.mucilaginosus,such as oxalic,tartaric,citric,and malic acids,dominated in bioleaching,accounting for 73.8%of the vanadium leaching rate.Interestingly,during leaching,the presence of stone coal stimulated the expression of carbonic anhydrase in bacterial cells,and enzyme activity increased by 1.335-1.905 U.Enzyme activity positively promoted the production of metabolite organic acids,and total organic acid content increased by 39.31 mg·L^(-1),resulting in a reduction of 2.51 in the pH of the leaching system with stone coal.This effect favored the leaching of vanadium from stone coal.Atomic force microscopy illustrated that bacterial leaching exacerbated corrosion on the surface of stone coal beyond 10 nm.Our study provides a clear and promising strategy for exploring the bioleaching mechanism from the perspective of microbial enzyme activity and metabolites. 展开更多
关键词 Bacillus mucilaginosus stone coal vanadium ore BIOLEACHING carbonic anhydrase organic acids
下载PDF
磁性NiFe_(2)O_(4)基复合材料的构筑及光催化应用 被引量:2
2
作者 李晓微 张雷 +3 位作者 邢其鑫 昝金宇 周晋 禚淑萍 《化学进展》 SCIE CAS CSCD 北大核心 2022年第4期950-962,共13页
随着社会经济的快速发展,能源短缺与环境污染已成为当前人类面临的两大难题。人们一直致力于开发新的清洁可再生替代能源,其中,太阳能被认为是理想且具有发展潜力的清洁能源。光催化作为一种新型的“绿色技术”,可直接利用太阳能将环境... 随着社会经济的快速发展,能源短缺与环境污染已成为当前人类面临的两大难题。人们一直致力于开发新的清洁可再生替代能源,其中,太阳能被认为是理想且具有发展潜力的清洁能源。光催化作为一种新型的“绿色技术”,可直接利用太阳能将环境中的有机污染物降解为无害物质,进而有效解决上述问题。然而,要实现这个过程关键在于合理地设计和构筑高性能的光催化剂。铁酸镍(NiFe_(2)O_(4))作为一种磁性材料,兼具快速的磁响应性和良好的光化学稳定性,将其与能带匹配的半导体光催化剂复合,不仅能够获得活性高的光催化剂,而且实现了光催化剂的磁分离,从而使其在光催化领域展现出极为广阔的应用前景。本文主要综述了近5年来国内外NiFe_(2)O_(4)基复合材料的制备和光催化应用方面的最新研究进展,这将为新型高效磁性复合光催化材料的合成及应用提供新方法和新思路。最后,对NiFe_(2)O_(4)基复合光催化材料未来的发展前景做了展望。 展开更多
关键词 铁酸镍 磁性 复合材料 光催化
原文传递
上一页 1 下一页 到第
使用帮助 返回顶部