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Application of Microwave Plasma Atomic Emission Spectrometry (MP-AES) for environmental monitoring of industrially contaminated sites in Hyderabad City

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Abstract

Recently introduced microwave plasma-atomic emission spectroscopy (MP-AES) represents yet another and very important addition to the existing array of modern instrumental analytical techniques. In this study, an attempt is made to summarize the performance characteristics of MP-AES and its potential as an analytical tool for environmental studies with some practical examples from Patancheru and Uppal industrial sectors of Hyderabad city. A range of soil, sediment, water reference materials, particulate matter, and real-life samples were chosen to evaluate the performance of this new analytical technique. Analytical wavelengths were selected considering the interference effects of other concomitant elements present in different sample solutions. The detection limits for several elements were found to be in the range from 0.05 to 5 ng/g. The trace metals analyzed in both the sectors followed the topography with more pollution in the low-lying sites. The metal contents were found to be more in ground waters than surface waters. Since a decade, the pollutants are transfered from Patancheru industrial area to Musi River. After polluting Nakkavagu and turning huge tracts of agricultural lands barren besides making people residing along the rivulet impotent and sick, industrialists of Patancheru are shifting the effluents to downstream of Musi River through an 18-km pipeline from Patancheru. Since the effluent undergoes primary treatment at Common Effluent Treatment Plant (CETP) at Patanchru and travels through pipeline and mixes with sewage, the organic effluents will be diluted. But the inorganic pollutants such as heavy and toxic metals tend to accumulate in the environmental segments near and downstreams of Musi River. The data generated by MP-AES of toxic metals like Zn, Cu, and Cr in the ground and surface waters can only be attributed to pollution from Patancheru since no other sources are available to Musi River.

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References

  • Abhishek, C., & Tarun, G. (2010). Characterization and source apportionment of submicron (PM1) aerosol in Kanpur Region, India. Aerosol Air Quality Research, 10, 433–445.

    Google Scholar 

  • Anjaneyulu, Y. (1999). Conservation and management plans for remediation of Khazipally Cheruvu. Final Technical Report. Centre for Environment: Jawaharlal Nehru Technological University (JNTU).

    Google Scholar 

  • Appelo, C.A.J. & Postma, D. (2005), Geochemistry, groundwater and pollution, Sec. Ed., Leiden, The Netherlands (BalkemaPublishers).

  • Balaram, V. (1993). Characterisation of trace elements in environmental samples by IC-MS. Atomic Spectroscopy, 14(6), 174–179.

    CAS  Google Scholar 

  • Balaram, V., Ramesh, S. L., & Anjaiah, K. V. (1995). A comparative study of the sample decomposition procedures in the determination of trace and rare earth elements in anorthosites and related rocks by ICP - MS. Fresenius Journal of Analytical Chemistry, 353, 176–182.

    Article  CAS  Google Scholar 

  • Balaram, V., Satyanarananan, M., Avdeev, D. V., Berdnikov, N., Partijat, R., Sawant, S. S., Subramanyam, K. V. S., Anjaiah, K. V., Kamala, C. T., & Ramavathi, M. (2012). Use of xenon as an internal standard for the determination of trace elements in water samples by ICP-MS. Atomic Spectroscopy, 33(2), 41–47.

    CAS  Google Scholar 

  • Balaram, V., Dharmendra, V., Roy, P., Taylor, C., Kar, P., Raju, A. K., & Krishnaiah, A. (2013). Determination of precious metals in rocks and ores by microwave plasma- atomic emission spectrometry (MP-AES) for geochemical prospecting. Current Science, 104(9), 1207–1215.

  • Balaram, V., Dharmendra V., Roy, P., Taylor, C., Kamala, C T, Satyanarayanan, M, Prasenjit K., Subramanyam, K S. V., Raju, A. K., Krishnaiah A. (2014) Microwave plasma atomic emission spectrometry (MP-AES): a new analytical tool for geochemical studies, Atomic Spectroscopy, 35(2), 65–78.

  • Bansal, O. P. (1998). Heavy metal pollution of soil and plants due to sewage irrigation. Indian Journal of Environmental Health, 40, 51–57.

    CAS  Google Scholar 

  • Buechler, S., Devi, G.M., (2003). The impact of water conservation and reuse on the household economy. In: Proceedings of the Eighth International Conference on Water Conservation and Reuse of Wastewater, Mumbai, September 13–14

  • Chandra Sekhar, K., Chary, N. S., Kamala, C. T., Venkateswara Rao, J., Balaram, V., & Anjaneyulu, Y. (2003). Risk assessment and pathway study of arsenic in industrially contaminated sites of Hyderabad: a case study. Environment International, 29(5), 601–611.

    Article  CAS  Google Scholar 

  • Chandra Sekhar, K., Chary, N. S., Kamala, C. T., Kishan, R. A., & Pinsky, D. L. (2006). Biogeochemistry of arsenic in industrially contaminated agroecosystems of the patancheru region, Andhra Pradesh, India. Agroximia (Russian Journal), 03, 78–88.

    Google Scholar 

  • Dhar, RL, Gurunadha Rao, VVS, Subramanyam, K, Yadaiah, P, Gyaneshwara Rao, T, Keshavakrishna, A. (1998). Study of ground water pollution in Patancheru and Bolarum Industrail Development areas, Medak District. Andhra Pradesh. Technical Report No. NGRI-99-GW-252. National Geophysical Research Institute, 127.

  • Govindaraju, K. (1994). 1994 compilation of working values and sample descriptions for 383 geostandards, geostandards newsletter. Special Issue, 18, 1–158.

    CAS  Google Scholar 

  • Hammer, M. R. (2008). A magnetically excited microwave plasma source for atomic emission spectroscopy with performance approaching that of the inductively coupled plasma. Spectrochimica Acta Part B, 63, 456–464.

    Article  Google Scholar 

  • Ifthekhar J. S., (2013). The Hindu, Hyderabad, June 28. Now, Prepare to ‘breathe easy’ along the Musi, (http://www.thehindu.com/news/cities/Hyderabad/now-prepare-to-breathe-easy-along-the-musi/article4860950.ece).

  • IPCS (International Programme on Chemical Safety) (1991) Health and Safety Guide No. 46, Barium: Health and Safety Guide, World Health Organization, Geneva.

  • Jin, Q., Zhu, C., Border, M. W., & Hieftje, G. M. (1991). A microwave plasma torch assembly for atomic emission spectrometry. Spectrochimaica Acta Part B: Atomic Spectroscopy, 46(3), 417–430.

    Article  Google Scholar 

  • Jin, Q., Yang, W., Liang, F., Zhang, H., Aimin, Y., Cao, Y., Zhou, J., & Bing, X. (1998). Recent advances in microwave plasma torch atomic emission spectrometry. Journal of Analytical Atomic Spectrometry, 13, 377–384.

    Article  CAS  Google Scholar 

  • Koellensperger, G., Hann, S., & Stingeder, G. (2000). Determination of Rh, Pd and Pt in environmental silica containing matrices: capabilities and limitations of ICP-SFMS. Journal of Analytical Atomic Spectroscopy, 15, 1553–1557.

    Article  Google Scholar 

  • Krishna, A. K., Murthy, N. N., & Govil, P. K. (2007). Multielement analysis of soils by wavelength-dispersive X-ray fluorescence spectrometry. Atomic Spectroscopy, 28(6), 202–214.

    CAS  Google Scholar 

  • Kumari, N. J., Venkateshwarulu, V., & Raj Kumar, B. (1991). Heavy metal pollution and phytoplankton in the River Musi, Hyderabad, India. International Journal of Environmental Studies, 38, 157–164.

    Article  CAS  Google Scholar 

  • Li, W., Simmons, P., Shrader, D., Herrman, T. J., & Dai, S. Y. (2013). Microwave plasma atomic emission spectroscopy as a tool for the determination of copper, iron, manganese and zinc in animal feed and fertilizer. Talanta, 112, 43–48.

    Article  CAS  Google Scholar 

  • Nriyagu, O. J. (1998). A silent epidemic of environmental metal poisoning. Environmental Pollution, 50, 139–161.

    Article  Google Scholar 

  • Pullaiah, C. (2012). Musi river water pollution its impact on cropping pattern. Research Journal of Humanities and Social Sciences, 3(4), 514–518.

    Google Scholar 

  • Reddy, A. G. S., Saibaba, B., & Sudarshan, G. (2012). Hydrogeochemical characterization of contaminated groundwater in Patancheru industrial area, southern India. Environmental Monitoring and Assessment, 184(6), 3557–3576.

    Article  CAS  Google Scholar 

  • Satyanarayanan, M., Balaram, V., Hussin, M. S. A., Jemaili, M. A. R. A., Gnaneshwar Rao, T., Mathur, R., Dasaram, B., & Ramesh, S. L. (2007). Assessment of groundwater quality in a structurally deformed granitic terrain in Hyderabad, India. Environmental Monitoring Assessment, 131, 117–127.

    Article  CAS  Google Scholar 

  • Shivkumar, K., & Biksham, G. (1995). Statistical approach for the assessment of water pollution around industrial areas: a case study from Patancheru. Medak district, India, Environmental Monitoring and Assessment, 36, 229–249.

    Article  CAS  Google Scholar 

  • Shivkumar, K., Pande, A. K., & Biksham, G. (1997). Toxic trace element pollution inground waters around Patancheru and Bollaram Industrial areas, Andhra Pradesh, India: a graphical approach. Environmental Monitoring and Assessment, 45(1), 57–80.

    Article  CAS  Google Scholar 

  • Singh, R., Gautam, N., Mishra, A., & Gupta, R. (2011). Heavy metals and living systems: an overview. Indian Journal of Pharmacology, 43(3), 246–253.

    Article  CAS  Google Scholar 

  • Sridhara Charya, N., Kamala, C. T., & Samuel Suman Raj, D. (2008). Assessing risk of heavy metals from consuming food grown on sewage irrigated soils and food chain transfer. Ecotoxicology and Environmental Safety, 69, 513–524.

    Article  Google Scholar 

  • Subramanyam, K., & Yadaiah, P. (2000). The impact of paleo-channel on groundwater contamination, Andhra Pradesh, India. Environmental Geology, 40(1–2), 212–215.

    Google Scholar 

  • USEPA. (1992). Preparation of soil sampling protocols: sampling techniques and strategies. EPA/600/R-92/128. Washington DC.

  • Venkateshwarulu, V., & Sampath Kumar, P. T. (1982). Chemical and biological assessment of pollution in the River Musi. Hyderabad. Indian Biological Bullettin., 4, 23–30.

    Google Scholar 

  • Zhang, Z., & Wagatsuma, K. (2002). Matrix effects of easily ionizable elements and nitric acid in highpower microwave-induced nitrogen plasma atomic emission spectrometry. Spectrochimica Acta Part B, 57, 1247–1257.

    Article  Google Scholar 

Download references

Acknowledgements

CSIR–National Geophysical Research Institute, Hyderabad, is thanked for giving permission to publish this work. Authors CTK, VB, MSN and KSVS are thankful to Director, NGRI for the support rendered to carryout this research activity. CTK gratefully acknowledges the financial support from CSIR, New Delhi, in the form of “CSIR-RA fellowship.” VB acknowledges the financial support from Emeritus Scientist Scheme by CSIR, New Delhi.

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Kamala C. T., Balaram V., Dharmendra V. et al. Application of Microwave Plasma Atomic Emission Spectrometry (MP-AES) for environmental monitoring of industrially contaminated sites in Hyderabad City. Environ Monit Assess 186, 7097–7113 (2014). https://doi.org/10.1007/s10661-014-3913-4

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