功能化纳米多孔陶瓷吸附剂去除汞和其他污染物

G. Fryxell, S. Mattigod, K. Parker, R. Skaggs
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引用次数: 1

摘要

开发了一种新型的高性能纳米孔吸附剂,克服了现有技术的不足。这些新型材料是由合成纳米多孔陶瓷衬底组合而成的,这些衬底具有专门定制的孔径(2至10纳米)和非常高的表面积(~1000 m2 /g),具有自组装的单层有序的官能团,对特定类型的自由或复杂的阳离子或阴离子具有高亲和力和特异性。这些被称为SAMMS™(介孔二氧化硅自组装单层)的吸附剂是材料科学两个前沿的混合体:分子自组装技术和纳米多孔材料。一种含有巯基丙基三甲氧基硅烷单层的SAMMS™表现出对汞和其他软阳离子(如银、镉和铅)的特殊吸附性能。另一种形式的SAMMS™具有由乙二胺- cu (II)络合物(Cu-EDA)组成的功能单层,即使在高浓度硫酸盐存在下也能特异性吸附四面体氧阴离子,如砷酸盐、硒酸盐、钼酸盐、铬酸盐和高技术酸盐。锕系元素的分离可以通过由羟基吡啶酮、乙酰胺和丙酰胺磷酸盐组成的一组单层功能合成的SAMMS™材料来解决。这些纳米孔吸附剂为从各种废物流中高效和经济地去除污染物提供了更好的选择。
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Functionalized Nanoporous Ceramic Sorbents for Removal of Mercury And Other Contaminants
A new class of high-performance nanoporous sorbents has been developed for heavy metal removal that overcomes the deficiencies of existing technologies. These novel materials are created from a combination of synthetic nanoporous ceramic substrates that have specifically tailored pore sizes (2 to 10 nm) and very high surface areas (~1000 m 2 /g) with self-assembled monolayers of wellordered functional groups that have high affinity and specificity for specific types of free or complex cations or anions. These sorbents known as SAMMS™ (SelfAssembled Monolayers on Mesoporous Silica) are hybrids of two frontiers in materials science: molecular selfassembly techniques and nanoporous materials. One form of SAMMS™ containing monolayers of mercaptopropyltrismethoxy silane has shown exceptional sorptive properties for mercury and other soft cations such as silver, cadmium, and lead. Another form of SAMMS™ with a functional monolayer consisting of ethylenediamine-Cu(II) complex (Cu-EDA) specifically adsorbs tetrahedral oxyanions such as arsenate, selenate, molybdate, chromate and pertechnetate even in the presence of high concentrations of sulfate. Separation of actinides can be addressed by SAMMS™ material synthesized with a set of monolayer functionalities consisting of hydroxypyridinones, acetamide and propinamide phosphonates. These nanoporous sorbents offer a better choice for efficient and cost-effective removal contaminants from diverse waste streams.
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