Literature DB >> 16683613

Development of cost-effective noncarbon sorbents for Hg(0) removal from coal-fired power plants.

Joo-Youp Lee1, Yuhong Ju, Tim C Keener, Rajender S Varma.   

Abstract

Noncarbonaceous materials or mineral oxides (silica gel, alumina, molecular sieves, zeolites, and montmorillonite) were modified with various functional groups such as amine, amide, thiol, urea, and active additives such as elemental sulfur, sodium sulfide, and sodium polysulfide to examine their potential as sorbents for the removal of elemental mercury (Hg(0)) vapor at coal-fired utility power plants. A number of sorbent candidates such as amine- silica gel, urea- silica gel, thiol- silica gel, amide-silica gel, sulfur-alumina, sulfur-molecular sieve, sulfur-montmorillonite, sodium sulfide-montmorillonite, and sodium polysulfide-montmorillonite, were synthesized and tested in a lab-scale fixed-bed system under an argon flow for screening purposes at 70 degrees C and/or 140 degrees C. Several functionalized silica materials reported in previous studies to effectively control heavy metals in the aqueous phase showed insignificant adsorption capacities for Hg(0) control in the gas phase, suggesting that mercury removal mechanisms in both phases are different. Among elemental sulfur-, sodium sulfide-, and sodium polysulfide-impregnated inorganic samples, sodium polysulfide-impregnated montmorillonite K 10 showed a moderate adsorption capacity at 70 degrees C, which can be used for sorbent injection prior to the wet FGD system.

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Year:  2006        PMID: 16683613     DOI: 10.1021/es051951l

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  1 in total

1.  Mercury reduction and complexation by natural organic matter in anoxic environments.

Authors:  Baohua Gu; Yongrong Bian; Carrie L Miller; Wenming Dong; Xin Jiang; Liyuan Liang
Journal:  Proc Natl Acad Sci U S A       Date:  2011-01-10       Impact factor: 11.205

  1 in total

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