Ramrakhiani Lata, Ghosh Sourja, Majumdar Swachchha
Ceramic Membrane Division, CSIR-Central Glass and Ceramic Research Institute, 196, Raja S.C. Mullick Road, Kolkata, 700 032, India.
Appl Biochem Biotechnol. 2016 Sep;180(1):41-78. doi: 10.1007/s12010-016-2083-y. Epub 2016 Apr 20.
Heavy metal pollution in water emerges as a severe socio-environmental problem originating primarily from the discharge of industrial wastewater. In view of the toxic, non-biodegradable, and persistent nature of most of the heavy metal ions, remediation of such components becomes an absolute necessity. Biosorption is an emerging tool for bioremediation that has gained momentum for employing low-cost biological materials with effective metal binding capacities. Even though biological materials possess excellent metal adsorption abilities, they show poor mechanical strength and low rigidity. Other disadvantages include solid-liquid separation problems, possible biomass swelling, lower efficiency for regeneration or reuse, and frequent development of high pressure drop in the column mode that limits its applications under real conditions. To improve the biosorption efficiency, biomasses need to be modified with a simple technique for selective/multi-metal adsorption. This review is intended to cover discussion on biomass modification for enhanced biosorption efficiency, mechanism studies using various instrumental/analytical techniques, and future direction for research and development including the fate of spent biosorbent. In most of the previously published researches, difficulty of the process in scaling up has not been addressed. The current article outlines the application potential of biosorbents in the development of hybrid technology integrated with membrane processes for water and wastewater treatment in industrial scale.
水中的重金属污染已成为一个严重的社会环境问题,主要源于工业废水的排放。鉴于大多数重金属离子具有毒性、不可生物降解和持久性,对这些成分进行修复成为绝对必要。生物吸附是一种新兴的生物修复工具,它利用具有有效金属结合能力的低成本生物材料,因而受到关注。尽管生物材料具有出色的金属吸附能力,但它们的机械强度较差,刚性较低。其他缺点包括固液分离问题、可能的生物质膨胀、再生或再利用效率较低,以及在柱模式下经常出现高压降,这限制了其在实际条件下的应用。为了提高生物吸附效率,需要用一种简单的技术对生物质进行改性,以实现选择性/多金属吸附。本综述旨在涵盖关于提高生物吸附效率的生物质改性讨论、使用各种仪器/分析技术的机理研究,以及包括废生物吸附剂去向在内的未来研发方向。在大多数先前发表的研究中,尚未解决该过程放大的困难。本文概述了生物吸附剂在与膜工艺集成的混合技术开发中的应用潜力,该技术可用于工业规模的水和废水处理。