Register      Login
Environmental Chemistry Environmental Chemistry Society
Environmental problems - Chemical approaches

Articles citing this paper

Relationship of arsenic speciation and bioavailability in mine wastes for human health risk assessment

Violet Diacomanolis A , Barry N. Noller B , Raijeli Taga A B , Hugh H. Harris C , Jade B. Aitken D and Jack C. Ng A E F
+ Author Affiliations
- Author Affiliations

A The University of Queensland, National Research Centre for Environmental Toxicology, 39 Kessel Road, Coopers Plains, Brisbane, Qld 4018, Australia.

B The University of Queensland, Centre for Mined Land Rehabilitation, St Lucia, Brisbane, Qld 4072, Australia.

C Department of Chemistry, The University of Adelaide, Adelaide, SA 5005, Australia.

D School of Chemistry, The University of Sydney, Sydney, NSW 2006, Australia.

E Cooperative Research Centre for Contamination Assessment and Remediation of the Environment (CRC CARE), ATC Building University Drive, Callaghan, NSW 2308, Australia.

F Corresponding author. Email: j.ng@uq.edu.au

Environmental Chemistry 13(4) 641-655 https://doi.org/10.1071/EN14152
Submitted: 14 January 2015  Accepted: 22 June 2015   Published: 18 December 2015



9 articles found in Crossref database.

Arsenic in Playground Soils from Kindergartens and Green Recreational Areas of Bratislava City (Slovakia): Occurrence and Gastric Bioaccessibility
Hiller Edgar, Filová Lenka, Jurkovič Ľubomír, Lachká Lucia, Kulikova Tatsiana, Šimurková Mária
Archives of Environmental Contamination and Toxicology. 2018 75(3). p.402
Arsenic bioaccessibility and fractionation in abandoned mine soils from selected sites in New South Wales, Australia and human health risk assessment
Fazle Bari A.S.M., Lamb Dane, Choppala Girish, Seshadri Balaji, Islam Md. Rashidul, Sanderson Peter, Rahman Mohammad Mahmudur
Ecotoxicology and Environmental Safety. 2021 223 p.112611
As and S speciation in a submarine sulfide mine tailings deposit and its environmental significance: The study case of Portmán Bay (SE Spain)
Baza-Varas A., Roqué-Rosell J., Canals M., Frigola J., Cerdà-Domènech M., Sanchez-Vidal A., Amblàs D., Campeny M., Marini C.
Science of The Total Environment. 2023 882 p.163649
Health risk apportionment of arsenic from multiple exposure pathways in Paracatu, a gold mining town in Brazil
Ng Jack C., Ciminelli Virginia, Gasparon Massimo, Caldeira Claudia
Science of The Total Environment. 2019 673 p.36
Comparative evaluation of in vivo relative bioavailability and in vitro bioaccessibility of arsenic in leafy vegetables and its implication in human exposure assessment
Zheng Xiaoman, Zhang Zengyu, Chen Jiancheng, Liang Huanting, Chen Xue, Qin Yan, Shohag M.J.I., Wei Yanyan, Gu Minghua
Journal of Hazardous Materials. 2022 423 p.126909
Arsenic(III) sorption on organo-ferrihydrite coprecipitates: Insights from maize and rape straw-derived DOM
Darma Aminu, Liu Yichen, Xia Xing, Wang Yihao, Jin Lin, Yang Jianjun
Chemosphere. 2024 352 p.141372
Speciation analysis of arsenic in samples containing high concentrations of chloride by LC-HG-AFS
Yu Xiaoping, Cui Wanjing, Wang Qin, Guo Yafei, Deng Tianlong
Analytical and Bioanalytical Chemistry. 2019 411(27). p.7251
Accumulation of aluminium and arsenic in Cenococcum geophilum sclerotia from forest soil affected by mining smoke
Nyamsanjaa Khulan, Genseki Akira, Hatano Tomohiro, Oyuntsetseg Bolormaa, Narisawa Kazuhiko, Watanabe Makiko
Chemistry and Ecology. 2024 40(3). p.276
Geochemical cycles of arsenic in historic tin tailings from multiple ore sources: an example from Australia
Corzo Remigio Amelia, Rubinos David A., van der Ent Antony, Edraki Mansour
Water, Air, & Soil Pollution. 2021 232(12).

Committee on Publication Ethics


Abstract Supplementary MaterialSupplementary Material (1.7 MB) Export Citation Get Permission