Status of disinfection byproducts research in India.

[1]  S. Gupta,et al.  Cumulative human health risk analysis of trihalomethanes exposure in drinking water systems. , 2022, Journal of environmental management.

[2]  J. Criquet,et al.  Identification of disinfection by-product precursors by natural organic matter fractionation: a review , 2022, Environmental Chemistry Letters.

[3]  W. Mitch Tap water and bladder cancer in China , 2022, Nature Sustainability.

[4]  J. M. Elwood,et al.  Nitrates in drinking water and cancers of the colon and rectum: a meta-analysis of epidemiological studies. , 2022, Cancer epidemiology.

[5]  W. Weir,et al.  A scoping review of risk factors and transmission routes associated with human giardiasis outbreaks in high-income settings , 2022, Current research in parasitology & vector-borne diseases.

[6]  N. Rajamohan,et al.  Potential risks and approaches to reduce the toxicity of disinfection by-product - A review. , 2022, The Science of the total environment.

[7]  S. Richardson,et al.  Drivers of Disinfection Byproduct Cytotoxicity in U.S. Drinking Water: Should Other DBPs Be Considered for Regulation? , 2021, Environmental science & technology.

[8]  M. Ibrahim,et al.  Multi-exposure human health risks assessment of trihalomethanes in drinking water of Egypt. , 2021, Environmental research.

[9]  Abhishek Jain,et al.  Access to Clean Drinking Water for All in India – A Matter of Sustainability of Technological and Other Interventions , 2021 .

[10]  K. Ikehata,et al.  Potential of UV-B and UV-C irradiation in disinfecting microorganisms and removing N-nitrosodimethylamine and 1,4-dioxane for potable water reuse: A review. , 2021, Chemosphere.

[11]  M. Sridhar,et al.  Assessment of water supply system from catchment to consumers as framed in WHO water safety plans: A study from Maiduguri water treatment plant, North East Nigeria , 2021 .

[12]  Yang Deng,et al.  The occurrence and control of waterborne viruses in drinking water treatment: A review , 2021, Chemosphere.

[13]  G. Aggidis,et al.  State of the art of UV water treatment technologies and hydraulic design optimisation using computational modelling , 2021, Journal of Water Process Engineering.

[14]  Xiangru Zhang,et al.  How Much of the Total Organic Halogen and Developmental Toxicity of Chlorinated Drinking Water Might Be Attributed to Aromatic Halogenated DBPs? , 2021, Environmental science & technology.

[15]  Hai-feng Zhang,et al.  Disinfection by-product (DBP) research in China: Are we on the track? , 2021, Journal of environmental sciences.

[16]  S. Mukherji,et al.  Role of precursors in the formation of trihalomethanes during chlorination of drinking water and wastewater effluents from a metropolitan region in western India , 2021 .

[17]  Tiantian Li,et al.  Cumulative health risk assessment of disinfection by-products in drinking water by different disinfection methods in typical regions of China. , 2021, The Science of the total environment.

[18]  Sirajuddin Ahmed,et al.  Chlorination disinfection by-products in municipal drinking water – A review , 2020 .

[19]  T. Ahmed,et al.  Climate Change, Water Quality and Water-Related Challenges: A Review with Focus on Pakistan , 2020, International journal of environmental research and public health.

[20]  Bhanu Prakash Vellanki,et al.  Comparison of O3-BAC, UV/H2O2-BAC, and O3/H2O2-BAC treatments for limiting the formation of disinfection byproducts during drinking water treatment in India , 2020 .

[21]  K. Capak,et al.  Disinfection by-products in Croatian drinking water supplies with special emphasis on the water supply network in the city of Zagreb. , 2020, Journal of environmental management.

[22]  S. Richardson,et al.  To regulate or not to regulate? What to do with more toxic disinfection by-products? , 2020 .

[23]  Bramha Gupta,et al.  Augmentation of the coagulation activity of alum using a porous bio-flocculant for the remediation of trihalomethanes-generating hydrophobic natural organic matter , 2020 .

[24]  S. Fiore,et al.  Emerging disinfection byproducts: A review on their occurrence and control in drinking water treatment processes , 2020, Chemosphere.

[25]  S. Gupta,et al.  Modification of Bael fruit shell and its application towards Natural organic matter removal with special reference to predictive modeling and control of THMs in drinking water supplies , 2020 .

[26]  B. Mamba,et al.  Contemporary issues on the occurrence and removal of disinfection byproducts in drinking water - A review , 2020 .

[27]  Nan Wu,et al.  Increasing prevalence of antibiotic resistance genes in manured agricultural soils in northern China , 2020, Frontiers of Environmental Science & Engineering.

[28]  Bhanu Prakash Vellanki,et al.  Applicability of advanced oxidation processes in removing anthropogenically influenced chlorination disinfection byproduct precursors in a developing country. , 2019, Ecotoxicology and environmental safety.

[29]  M. Moosazadeh,et al.  Do disinfection byproducts in drinking water have an effect on human cancer risk worldwide? A meta‐analysis , 2019 .

[30]  A. Vengosh,et al.  Disinfection Byproducts in Rajasthan, India: Are Trihalomethanes a Sufficient Indicator of Disinfection Byproduct Exposure in Low-Income Countries? , 2019, Environmental science & technology.

[31]  G. Záray,et al.  Formation of chlorination by-products in drinking water treatment plants using breakpoint chlorination , 2019, Microchemical Journal.

[32]  T. Ratpukdi,et al.  Occurrence of trihalomethanes and haloacetonitriles in water distribution networks of Khon Kaen Municipality, Thailand , 2019, Water Supply.

[33]  C. Musikavong,et al.  Emerging disinfection by-products’ formation potential in raw water, wastewater, and treated wastewater in Thailand , 2019, Journal of environmental science and health. Part A, Toxic/hazardous substances & environmental engineering.

[34]  A. S. Venkatesh,et al.  Effectiveness of Bio-Activated Carbon Filtration and Ozonation on Control of Halo Acetic Acids Formation during Chlorination of Ganga River Water at Kanpur, India , 2019, Ozone: Science & Engineering.

[35]  Baoyou Shi,et al.  The occurrence and transformation behaviors of disinfection byproducts in drinking water distribution systems in rural areas of eastern China. , 2019, Chemosphere.

[36]  K K Satpathy,et al.  Formation, distribution, and speciation of DBPs (THMs, HAAs, ClO2-,andClO3-) during treatment of different source water with chlorine and chlorine dioxide. , 2019, Chemosphere.

[37]  X. Yang,et al.  Halobenzoquinone-Induced Developmental Toxicity, Oxidative Stress, and Apoptosis in Zebrafish Embryos. , 2018, Environmental science & technology.

[38]  R. Selvam,et al.  Identification of disinfection by-products (DBPs) halo phenols in drinking water , 2018, Applied Water Science.

[39]  Bhanu Prakash Vellanki,et al.  Natural organic matter as precursor to disinfection byproducts and its removal using conventional and advanced processes: state of the art review. , 2018, Journal of water and health.

[40]  V. Dutta,et al.  Effect of Pre-ozonation on Haloacetic Acids Formation in Ganga River Water at Kanpur, India , 2018 .

[41]  Xin Yang,et al.  Occurrence of nitrogenous and carbonaceous disinfection byproducts in drinking water distributed in Shenzhen, China. , 2017, Chemosphere.

[42]  Hongyan Zhai,et al.  Disinfection byproduct formation in drinking water sources: A case study of Yuqiao reservoir. , 2017, Chemosphere.

[43]  Zhi-guang Niu,et al.  Composition profiles, levels, distributions and ecological risk assessments of trihalomethanes in surface water from a typical estuary of Bohai Bay, China. , 2017, Marine pollution bulletin.

[44]  Rongjie Hao,et al.  Effect of water chemistry on disinfection by-product formation in the complex surface water system. , 2017, Chemosphere.

[45]  Xiao-yan Li,et al.  Three-step effluent chlorination increases disinfection efficiency and reduces DBP formation and toxicity. , 2017, Chemosphere.

[46]  Mohammed H. Abu-Dieyeh,et al.  Disinfection by-products of chlorine dioxide (chlorite, chlorate, and trihalomethanes): Occurrence in drinking water in Qatar. , 2016, Chemosphere.

[47]  Yuefeng F. Xie,et al.  Characterization of haloacetaldehyde and trihalomethane formation potentials during drinking water treatment. , 2016, Chemosphere.

[48]  Xiao-jian Zhang,et al.  Occurrence of nitrosamines and their precursors in drinking water systems around mainland China. , 2016, Water research.

[49]  M. R. Templeton,et al.  Nitrogenous disinfection byproducts in English drinking water supply systems: Occurrence, bromine substitution and correlation analysis. , 2015, Water research.

[50]  S. Gupta,et al.  Modeling of trihalomethanes (THMs) in drinking water supplies: a case study of eastern part of India , 2015, Environmental Science and Pollution Research.

[51]  S. Gupta,et al.  Multi-exposure cancer and non-cancer risk assessment of trihalomethanes in drinking water supplies - A case study of Eastern region of India. , 2015, Ecotoxicology and environmental safety.

[52]  Xiangru Zhang,et al.  Comparative toxicity of new halophenolic DBPs in chlorinated saline wastewater effluents against a marine alga: halophenolic DBPs are generally more toxic than haloaliphatic ones. , 2014, Water research.

[53]  S. Gupta,et al.  Human health risk analysis from disinfection by-products (DBPs) in drinking and bathing water of some Indian cities , 2014, Journal of Environmental Health Science and Engineering.

[54]  U. Nisha,et al.  Study on Formation of Trihalomethanes (THMs) in Potable Treated Water of Gwalior City, Madhya Pradesh, India , 2013 .

[55]  Xiangru Zhang,et al.  Comparative developmental toxicity of new aromatic halogenated DBPs in a chlorinated saline sewage effluent to the marine polychaete Platynereis dumerilii. , 2013, Environmental science & technology.

[56]  M. Kogevinas,et al.  Occurrence and toxicity of disinfection byproducts in European drinking waters in relation with the HIWATE epidemiology study. , 2012, Environmental science & technology.

[57]  S. V. Narasimhan,et al.  Trihalomethane formation potential of drinking water sources in a rural location , 2012 .

[58]  S. Gupta,et al.  Multi-route risk assessment from trihalomethanes in drinking water supplies , 2011, Environmental monitoring and assessment.

[59]  J. Bassin,et al.  Trihalomethane formation potential in treated water supplies in urban metro city , 2010, Environmental monitoring and assessment.

[60]  C. Mathers,et al.  Global, regional, and national causes of child mortality in 2008: a systematic analysis , 2010, The Lancet.

[61]  S. Goel Impact of chlorination on the incidence of cancers and miscarriages in two different campus communities in India. , 2008, Journal of environmental science & engineering.

[62]  S. Goel,et al.  Chlorinated drinking water, cancers and adverse health outcomes in Gangtok, Sikkim, India. , 2007, Journal of environmental science & engineering.

[63]  S. Richardson,et al.  Occurrence of a new generation of disinfection byproducts. , 2006, Environmental science & technology.

[64]  N. Thacker,et al.  Trihalomethane Formation Potential and Concentration Changes During Water Treatment at Mumbai (India) , 2002, Environmental monitoring and assessment.

[65]  R. Srikanth CHLOROFORM LEVELS IN THE DRINKING WATER OF HYDERABAD CITY, INDIA , 1997 .

[66]  S. Dutta,et al.  Occurrence of trihalomethanes in drinking water of Indian states: a critical review , 2020 .

[67]  Xiao-yan Li,et al.  Two-step chlorination: A new approach to disinfection of a primary sewage effluent. , 2017, Water research.

[68]  S. Lakshminarayanan,et al.  Diarrheal diseases among children in India: Current scenario and future perspectives , 2015, Journal of natural science, biology, and medicine.

[69]  N. Mishra,et al.  Trihalomethane Formation Potential in Surface Water of Kanpur, India , 2013 .

[70]  H. Srivastava,et al.  Evaluation of Trihalomethane Formation Potential Due To Anthropogenic Sources in the Ground Water of Kanpur , 2012 .

[71]  Kunwar P. Singh,et al.  Modeling and optimization of trihalomethanes formation potential of surface water (a drinking water source) using Box–Behnken design , 2011, Environmental Science and Pollution Research.

[72]  G. Ozolins,et al.  WHO guidelines for drinking-water quality. , 1984, WHO chronicle.