{"title":"热增强细菌在多孔介质中的电动运输","authors":"Yongping Shan, Huijuan Hao, Jinyao He, Naiwen Hu, Ping Liu, Mingxiu Zhan, Wentao Jiao, Yongguang Yin","doi":"10.1021/acs.est.4c07954","DOIUrl":null,"url":null,"abstract":"Soil bacterial communities are crucial to various ecosystem services, with significant implications for environmental processes and human health. Delivering functional bacterial strains to target locations enhances the preferred ecological features. However, the delivery process is often constrained by limited bacterial transport through low-permeability soil. Although electrokinetics breaks the bottleneck of bacterial transport in thin porous media, its efficiency remains limited. Here, we tested the hypothesis that thermal effects enhance electrokinetic transport by shifting the net force acting on the bacterium. We found that heating significantly increased electrokinetic transport by 2.75-fold at 1 V cm<sup>–1</sup> through porous media. Thermal enhancement mechanisms were interpreted by the heating shift of net force integrating matrix attractive and electrokinetic forces and verified by the Quartz Crystal Microbalance with Dissipation Monitoring (<i>QCMD</i>) observed adhesion rigidity shift. Thermal-dependent parameters liquid viscosity and dielectric constant were the primary contributors to the net force shift. Their variations reduce the attractive force and augment the electrokinetic forces, resulting in lower adhesion rigidity and enhanced bacterial transport. A mechanism-based approach interlinking electric field strength, thermal effect, and collision efficiency was established to facilitate the application of thermally enhanced electrokinetic bacterial transport. These findings provide new prospects for improving bacterial transport, hence optimizing soil ecosystem functions.","PeriodicalId":36,"journal":{"name":"环境科学与技术","volume":"26 1","pages":""},"PeriodicalIF":10.8000,"publicationDate":"2025-01-15","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Thermal Enhanced Electrokinetic Bacterial Transport in Porous Media\",\"authors\":\"Yongping Shan, Huijuan Hao, Jinyao He, Naiwen Hu, Ping Liu, Mingxiu Zhan, Wentao Jiao, Yongguang Yin\",\"doi\":\"10.1021/acs.est.4c07954\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Soil bacterial communities are crucial to various ecosystem services, with significant implications for environmental processes and human health. Delivering functional bacterial strains to target locations enhances the preferred ecological features. 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Their variations reduce the attractive force and augment the electrokinetic forces, resulting in lower adhesion rigidity and enhanced bacterial transport. A mechanism-based approach interlinking electric field strength, thermal effect, and collision efficiency was established to facilitate the application of thermally enhanced electrokinetic bacterial transport. 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引用次数: 0
摘要
土壤细菌群落对各种生态系统服务至关重要,对环境过程和人类健康具有重大影响。将功能菌株送到目标位置可以增强首选的生态特性。然而,通过低渗透性土壤的细菌运输往往受到限制。虽然电动力学打破了细菌在薄多孔介质中运输的瓶颈,但其效率仍然有限。在这里,我们测试了热效应通过改变作用在细菌上的净力来增强电动运输的假设。我们发现加热显著增加了在1 V cm-1下通过多孔介质的电动力学输运,其输运率提高了2.75倍。热增强机制由矩阵引力和电动势综合的净力的热位移来解释,并通过带有耗散监测(QCMD)的石英晶体微天平观察到粘附刚度的位移来验证。热相关参数液体粘度和介电常数是净力位移的主要贡献者。它们的变化降低了吸引力,增加了电动势,导致粘附硬度降低,细菌运输增强。建立了一种将电场强度、热效应和碰撞效率联系起来的基于机制的方法,以促进热增强细菌电动运输的应用。这些发现为改善细菌转运从而优化土壤生态系统功能提供了新的前景。
Thermal Enhanced Electrokinetic Bacterial Transport in Porous Media
Soil bacterial communities are crucial to various ecosystem services, with significant implications for environmental processes and human health. Delivering functional bacterial strains to target locations enhances the preferred ecological features. However, the delivery process is often constrained by limited bacterial transport through low-permeability soil. Although electrokinetics breaks the bottleneck of bacterial transport in thin porous media, its efficiency remains limited. Here, we tested the hypothesis that thermal effects enhance electrokinetic transport by shifting the net force acting on the bacterium. We found that heating significantly increased electrokinetic transport by 2.75-fold at 1 V cm–1 through porous media. Thermal enhancement mechanisms were interpreted by the heating shift of net force integrating matrix attractive and electrokinetic forces and verified by the Quartz Crystal Microbalance with Dissipation Monitoring (QCMD) observed adhesion rigidity shift. Thermal-dependent parameters liquid viscosity and dielectric constant were the primary contributors to the net force shift. Their variations reduce the attractive force and augment the electrokinetic forces, resulting in lower adhesion rigidity and enhanced bacterial transport. A mechanism-based approach interlinking electric field strength, thermal effect, and collision efficiency was established to facilitate the application of thermally enhanced electrokinetic bacterial transport. These findings provide new prospects for improving bacterial transport, hence optimizing soil ecosystem functions.
期刊介绍:
Environmental Science & Technology (ES&T) is a co-sponsored academic and technical magazine by the Hubei Provincial Environmental Protection Bureau and the Hubei Provincial Academy of Environmental Sciences.
Environmental Science & Technology (ES&T) holds the status of Chinese core journals, scientific papers source journals of China, Chinese Science Citation Database source journals, and Chinese Academic Journal Comprehensive Evaluation Database source journals. This publication focuses on the academic field of environmental protection, featuring articles related to environmental protection and technical advancements.