Nanoscale iron particles for complete reduction of chlorinated ethenes

Lien, HL; Zhang, WX

HERO ID

1963973

Reference Type

Journal Article

Year

2001

Language

English

HERO ID 1963973
In Press No
Year 2001
Title Nanoscale iron particles for complete reduction of chlorinated ethenes
Authors Lien, HL; Zhang, WX
Journal Colloids and Surfaces A: Physicochemical and Engineering Aspects
Volume 191
Issue 1-2
Page Numbers 97-105
Abstract This paper examines the potential for using laboratory synthesized nanoscale Pd/Fe bimetallic particles to reduce chlorinated ethenes. Rapid and complete dechlorination was achieved for six chlorinated ethenes: tetrachloroethene (PCE, C2Cl4), trichloroethene (TCE, C2HCl3), 1,1-dichloroethene (1,1-DCE, C2H2Cl2), cis- and trans-1,2-dichloroethene (c-DCE, t-DCE, C2H2Cl2), and vinyl chloride (VC, C2H3Cl). The chlorinated ethenes (20 mg 1(-1)) were completely reduced within 90 min at a metal loading of 5 g 1(-1). Ethane was the primary prod-act from these reactions, amount to 60-90% of the total carbon. Ethene (3-20%) was produced during the transformation of TCE, DCEs and VC. No chlorinated intermediates or final products were detected above the method detection limit ( < 5 mug 1(-1)). The remarkable performance of the nanoscale particles can be attributed to: (1) High specific surface area of the nanoscale metal particles, approximately 35 m(2) g(-1), tens to hundreds of times higher than commercial grade micro- or milli-scale iron particles; (2) Increased reactivity per unit metal surface area, largely due to the presence of the noble metal (Pd) on the surface. Values of the surface-area-normalized rate coefficients (k(SA)) were two orders of magnitude higher than those reported in the literature for larger iron particles. Due to their small particle size and high reactivity, the nanoscale bimetallic particles may be useful in a wide array of environmental applications including subsurface injection for groundwater treatment. (C) 2001 Elsevier Science B.V. All rights reserved.
Doi 10.1016/S0927-7757(01)00767-1
Wosid WOS:000171350400009
Url http://www.sciencedirect.com/science/article/pii/S0927775701007671
Is Certified Translation No
Dupe Override No
Comments Journal: ISSN:
Is Public Yes
Language Text English
Keyword ground water; iron; nanoparticle; palladium; remediation; PCE; TCE; DCE; VC