Hi'/> Electrochemical Removal of Radioactive Cesium from Nuclear Waste Using the Dendritic Copper Hexacyanoferrate/Carbon Nanotube Hybrids
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Electrochemical Removal of Radioactive Cesium from Nuclear Waste Using the Dendritic Copper Hexacyanoferrate/Carbon Nanotube Hybrids

机译:使用树突式六氰基甲酸酯/碳纳米管杂交种子从核废料中除放射性铯的电化学除去放射性铯

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Highlights?Copper hexacyanoferrate was uniformly covered on carbon nanotubes.?Cs+ion can be exchanged using this hybrid by controlling the electrode potential.?The maximum of Cs+adsorption capacity is 310 mg·g?1in 50μM Cs+solution.?The distribution coefficient of Cs+in this hybrid reaches up to 568 L·g?1,.?This hybrid can be regenerated with high stability for Cs+exchange.AbstractA novel electrochemical separation system was developed based on copper hexacyanoferrate/multiwalled carbon nanotube (CuHCF/MWCNT) hybrids for selectively removing cesium from wastewater. These CuHCF/MWCNT hybrids were prepared by co-precipitation strategy. The as-prepared CuHCF nanoparticles were uniformly covered on MWCNTs to form a dendritic core-shell structure. This novel structure can improve CuHCFs conductivity, making CuHCFs more accessible for ion exchange. The uptake and release of alkali ion in CuHCF/MWCNT hybrids can be shifted mutually by switching the applied potentials between the anode and cathode. This ion exchange is a fast and reversible process associated with electron transfer in CuHCFs. The potential response depends on the radius of alkali ion. Using this electrochemical adsorption system (EAS), the maximum adsorption capacity (Qmax) of Cs+ion for CuHCFs/MWCNT hybrids reaches up to 310 mg·g?1in 50μM Cs+solution with a distribution coefficient Kdof 568 L·g?1, superior to the Cs+removal performance by the conventional adsorption system (Qmax230 mg·g?1, Kd 389 L·g?1). Besides, CuHCF/MWCNT hybrids can be regenerated electrochemically. In addition to the advantages in Cs+removal performance and electrochemical regenerability, they can maintain considerable stability with uptake capacity retention of 85% after 100 cycles of adsorption and regeneration.]]>
机译:<![cdata [ 突出显示 铜六氰基甲酸酯在碳纳米管上均匀覆盖。 cs + 可以通过控制电极电位使用该混合物来交换离子。 CS + 吸附容量为310 mg·G ?1 在50μmcs + 解决方案。 < CE:列表 - 项目一d =“lsti0020”> cs + < / ce:sup>在这个混合中达到高达568 l·g ?1 ,。 <列表 - 项目id =“lsti0025”> 可以重新生成这种混合稳定性的CS + Exchange。 Abstract 基于铜氰基甲醛/多壁碳纳米管(CUHCF / MWCNT)杂种,开发了一种新颖的电化学分离系统,用于选择性地除去铯废水。通过共沉淀策略制备这些CuHCF / MWCNT杂种。将AS制备的CuHCF纳米颗粒均匀地覆盖在MWCNT上以形成树枝状核壳结构。这种新颖的结构可以提高CUHCFS电导率,使CUHCFS更容易获得离子交换。在CuHCF / MWCNT杂种中的碱离子的摄取和释放可以通过在阳极和阴极之间切换施加的电位相互移动。该离子交换是与CuHCFS中的电子转移相关的快速且可逆的过程。电位响应取决于碱金属离子。使用这种电化学吸附系统(EA),最大吸附容量(Q MAX )的CS + CuHCFS / MWCNT杂种的离子达到310 mg·G 1 在50μmcs + 配电系数k d 为568 l·g ?1 ,通过传统吸附系统优于CS + 清除性能(Q MAX 230 mg· g ?1 ,kd 389 l·g ?1 )。此外,可以电化学再生CuHCF / MWCNT杂种。除了CS + / CE:SUP>去除性能和电化学再生性的优点之外,它们可以在100次吸附和再生后的85%后保持相当大的稳定性。 ]]>

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