Li Wang*, Yi Zeng, Ruiqi yin, Yi Zheng, Zhen Li, Lihua Zhou, Guilong Yan, Zhenyu Li, Jingyu Chen, Jingjuan Lai, Dong Li, Dong Xiang, Chunxia Zhao, Hui Li, Bo Yu, Xuezhong Zhang, Han Li, Xungai Wang and Yuanpeng Wu*,
{"title":"相选择有机凝胶与ph触发回收高效溢油处理","authors":"Li Wang*, Yi Zeng, Ruiqi yin, Yi Zheng, Zhen Li, Lihua Zhou, Guilong Yan, Zhenyu Li, Jingyu Chen, Jingjuan Lai, Dong Li, Dong Xiang, Chunxia Zhao, Hui Li, Bo Yu, Xuezhong Zhang, Han Li, Xungai Wang and Yuanpeng Wu*, ","doi":"10.1021/acs.langmuir.5c0131810.1021/acs.langmuir.5c01318","DOIUrl":null,"url":null,"abstract":"<p >Oil spill pollution poses a severe environmental threat, necessitating the development of efficient and sustainable remediation strategies. In this study, we designed and synthesized a series of pH-responsive phase-selective organogelators (pRPSOGs) based on <span>d</span>-gluconic acetal derivatives with long-chain amine groups to selectively solidify oil in oil/water mixtures, facilitating its rapid removal and recovery. The gelation behavior, phase-selective capability, and pH-switchable properties of the synthesized pRPSOGs were systematically investigated by using inversion tests, rheological analysis, Fourier transform infrared spectroscopy, X-ray diffraction, and small-angle X-ray scattering. Molecular simulations were further conducted to elucidate the self-assembly mechanism of the gelators. The optimized gelator, A<sub>12</sub>, exhibited excellent thermal stability and mechanical strength, ensuring structural integrity during oil spill recovery. Importantly, the pH-responsive property of A<sub>12</sub> allowed for reversible solubility modulation, enabling efficient separation and recovery of both the gelator and oil phase without the need for energy-intensive distillation. This innovative strategy provided a reusable, energy-efficient, and environmentally friendly approach for oil spill treatment, offering promising applications for large-scale environmental remediation.</p>","PeriodicalId":50,"journal":{"name":"Langmuir","volume":"41 21","pages":"13482–13492 13482–13492"},"PeriodicalIF":3.9000,"publicationDate":"2025-05-19","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Phase-Selective Organogelators with pH-Triggered Recovery for Efficient Oil Spill Treatment\",\"authors\":\"Li Wang*, Yi Zeng, Ruiqi yin, Yi Zheng, Zhen Li, Lihua Zhou, Guilong Yan, Zhenyu Li, Jingyu Chen, Jingjuan Lai, Dong Li, Dong Xiang, Chunxia Zhao, Hui Li, Bo Yu, Xuezhong Zhang, Han Li, Xungai Wang and Yuanpeng Wu*, \",\"doi\":\"10.1021/acs.langmuir.5c0131810.1021/acs.langmuir.5c01318\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Oil spill pollution poses a severe environmental threat, necessitating the development of efficient and sustainable remediation strategies. 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Phase-Selective Organogelators with pH-Triggered Recovery for Efficient Oil Spill Treatment
Oil spill pollution poses a severe environmental threat, necessitating the development of efficient and sustainable remediation strategies. In this study, we designed and synthesized a series of pH-responsive phase-selective organogelators (pRPSOGs) based on d-gluconic acetal derivatives with long-chain amine groups to selectively solidify oil in oil/water mixtures, facilitating its rapid removal and recovery. The gelation behavior, phase-selective capability, and pH-switchable properties of the synthesized pRPSOGs were systematically investigated by using inversion tests, rheological analysis, Fourier transform infrared spectroscopy, X-ray diffraction, and small-angle X-ray scattering. Molecular simulations were further conducted to elucidate the self-assembly mechanism of the gelators. The optimized gelator, A12, exhibited excellent thermal stability and mechanical strength, ensuring structural integrity during oil spill recovery. Importantly, the pH-responsive property of A12 allowed for reversible solubility modulation, enabling efficient separation and recovery of both the gelator and oil phase without the need for energy-intensive distillation. This innovative strategy provided a reusable, energy-efficient, and environmentally friendly approach for oil spill treatment, offering promising applications for large-scale environmental remediation.
期刊介绍:
Langmuir is an interdisciplinary journal publishing articles in the following subject categories:
Colloids: surfactants and self-assembly, dispersions, emulsions, foams
Interfaces: adsorption, reactions, films, forces
Biological Interfaces: biocolloids, biomolecular and biomimetic materials
Materials: nano- and mesostructured materials, polymers, gels, liquid crystals
Electrochemistry: interfacial charge transfer, charge transport, electrocatalysis, electrokinetic phenomena, bioelectrochemistry
Devices and Applications: sensors, fluidics, patterning, catalysis, photonic crystals
However, when high-impact, original work is submitted that does not fit within the above categories, decisions to accept or decline such papers will be based on one criteria: What Would Irving Do?
Langmuir ranks #2 in citations out of 136 journals in the category of Physical Chemistry with 113,157 total citations. The journal received an Impact Factor of 4.384*.
This journal is also indexed in the categories of Materials Science (ranked #1) and Multidisciplinary Chemistry (ranked #5).