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层状 Ni-Mn LDHs@CuCON 纳米片阵列修饰铜网:用于增强油水分离和超级电容器的双功能材料。

Hierarchical Ni-Mn LDHs@CuCO Nanosheet Arrays-Modified Copper Mesh: A Dual-Functional Material for Enhancing Oil/Water Separation and Supercapacitors.

机构信息

Low-Carbon Technology & Chemical Reaction Engineering Lab, College of Chemical Engineering, Sichuan University, Chengdu 610065, China.

Civil & Environmental Engineering Department, University of Nebraska-Lincoln, Omaha, NE 68182-0178, USA.

出版信息

Int J Mol Sci. 2023 Sep 14;24(18):14085. doi: 10.3390/ijms241814085.

Abstract

The pursuit of superhydrophilic materials with hierarchical structures has garnered significant attention across diverse application domains. In this study, we have successfully crafted Ni-Mn LDHs@CuCO nanosheet arrays on a copper mesh (CM) through a synergistic process involving chemical oxidation and hydrothermal deposition. Initially, CuCO nanosheets were synthesized on the copper mesh, closely followed by the growth of Ni-Mn LDHs nanosheets, culminating in the establishment of a multi-tiered surface architecture with exceptional superhydrophilicity and remarkable underwater superoleophobicity. The resultant Ni-Mn LDHs@CuCO CM membrane showcased an unparalleled amalgamation of traits, including superhydrophilicity, underwater superoleophobicity, and the ability to harness photocatalytic forces for self-cleaning actions, making it an advanced oil-water separation membrane. The membrane's performance was impressive, manifesting in a remarkable water flux range (70 kL·mh) and an efficient oil separation capability for both oil/water mixture and surfactant-stabilized emulsions (below 60 ppm). Moreover, the innate superhydrophilic characteristics of the membrane rendered it a prime candidate for deployment as a supercapacitor cathode material. Evidenced by a capacitance of 5080 mF·cm at a current density of 6 mA cm in a 6 M KOH electrolyte, the membrane's potential extended beyond oil-water separation. This work not only introduces a cutting-edge oil-water separation membrane and supercapacitor electrode but also offers a promising blueprint for the deliberate engineering of hierarchical structure arrays to cater to a spectrum of related applications.

摘要

具有分级结构的超亲水材料的追求在各个不同的应用领域引起了广泛关注。在这项研究中,我们通过涉及化学氧化和水热沉积的协同过程,成功地在铜网上制备了 Ni-Mn LDHs@CuCO 纳米片阵列。首先,在铜网上合成了 CuCO 纳米片,紧接着生长了 Ni-Mn LDHs 纳米片,最终形成了具有卓越超亲水性和显著水下超疏油性的多层次表面结构。所得的 Ni-Mn LDHs@CuCO CM 膜具有无与伦比的特性融合,包括超亲水性、水下超疏油性以及利用光催化力进行自清洁的能力,使其成为一种先进的油水分离膜。该膜的性能令人印象深刻,表现出显著的水通量范围(70 kL·mh)和对油/水混合物和表面活性剂稳定乳液的高效油分离能力(低于 60 ppm)。此外,该膜的固有超亲水性使其成为超级电容器阴极材料的理想选择。在 6 M KOH 电解质中,电流密度为 6 mA cm 时,膜的电容为 5080 mF·cm,证明了其潜力超越了油水分离。这项工作不仅引入了一种先进的油水分离膜和超级电容器电极,还为精心设计分级结构阵列以满足各种相关应用提供了有希望的蓝图。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d15f/10531716/9cbb1bf34c1c/ijms-24-14085-g001.jpg

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