References
1. Agüera, A., Bueno, M. J. M., & Fernández-Alba, A. R. (2013). New trends in the analytical
determination of emerging contaminants and their transformation products in environmental
waters. Environmental Science and Pollution Research, 20(6), 3496–3515.
2. Al-Qaim, F. F., Abdullah, M. P., Othman, M. R., Latip, J., & Zakaria, Z. (2014).
Multi-residue analytical methodology-based liquid chromatography-time-of-flight-mass spectrometry for the analysis of pharmaceutical residues in surface water and effluents from
sewage treatment plants and hospitals. Journal of Chromatography A, 1345, 139–153.
3. Alvarez-Puebla, R. A., & Liz-Marzán, L. M. (2012). SERS detection of small inorganic
molecules and ions. Angewandte Chemie International Edition, 51(45), 11214–11223.
4. Arisido, M. W. (2015). Functional data analysis for environmental pollutants and health.
5. Asadnia, M., Kottapalli, A. G. P., Karavitaki, K. D., Warkiani, M. E., Miao, J., Corey, D. P.,
et al. (2016). From biological cilia to artificial flow sensors: Biomimetic soft polymer
nanosensors with high sensing performance. Scientific Reports, 6, 32955.
6. Asadnia, M., Myers, M., Umana-Membreno, G. A., Sanders, T. M., Mishra, U. K., Nener, B.
D., et al. (2017). Ca
2+ detection utilising AlGaN/GaN transistors with ion-selective polymer
membranes. Analytica Chimica Acta, 987, 105–110.
7. Auffan, M., Rose, J., Bottero, J. Y., Lowry, G. V., Jolivet, J. P., & Wiesner, M. R. (2009).
Towards a definition of inorganic nanoparticles from an environmental, health and safety
perspective. Nature Nanotechnology, 4(10), 634.
8. Bantz, K. C., Meyer, A. F., Wittenberg, N. J., Im, H., Kurtuluş, Ö., Lee, S. H., et al. (2011).
Recent progress in SERS biosensing. Physical Chemistry Chemical Physics, 13(24),
11551–11567.
9. Berlioz-Barbier, A., Vauchez, A., Wiest, L., Baudot, R., Vulliet, E., & Cren-Olivé, C. (2014).
Multi-residue analysis of emerging pollutants in sediment using QuEChERS-based extraction
followed by LC-MS/MS analysis. Analytical and Bioanalytical Chemistry, 406(4),
1259–1266.
10. Biver, E., Durosier-Izart, C., Chevalley, T., van Rietbergen, B., Rizzoli, R., & Ferrari, S.
(2018). Evaluation of radius microstructure and areal bone mineral density improves fracture
prediction in postmenopausal women. Journal of Bone and Mineral Research, 33(2),
328–337.
11. Bizkarguenaga, E., Ros, O., Iparraguirre, A., Navarro, P., Vallejo, A., Usobiaga, A., et al.
(2012). Solid-phase extraction combined with large volume injection-programmable temperature vaporization–gas chromatography–mass spectrometry for the multiresidue determination of priority and emerging organic pollutants in wastewater. Journal of Chromatography A,
1247, 104–117.
12. Buchberger, W. W. (2011). Current approaches to trace analysis of pharmaceuticals and
personal care products in the environment. Journal of Chromatography A, 1218(4), 603–618.
13. Cai, X., Gao, X., Wang, L., Wu, Q., & Lin, X. (2013). A layer-by-layer assembled and carbon
nanotubes/gold nanoparticles-based bienzyme biosensor for cholesterol detection. Sensors
and Actuators B: Chemical, 181, 575–583.
14. Cao, S., Sun, G., Zhang, Z., Chen, L., Feng, Q., Fu, B., et al. (2011). Greening China
naturally. Ambio, 40(7), 828–831.
15. Capozzi, M. E., DiMarchi, R. D., Tschöp, M. H., Finan, B., & Campbell, J. E. (2018).
Targeting the incretin/glucagon system with triagonists to treat diabetes. Endocrine Reviews,
39(5), 719–738.
16. Cavaliere, C., Capriotti, A. L., Ferraris, F., Foglia, P., Samperi, R., Ventura, S., et al. (2016).
Multiresidue analysis of endocrine-disrupting compounds and perfluorinated sulfates and
carboxylic acids in sediments by ultra-high-performance liquid chromatography–tandem mass
spectrometry. Journal of Chromatography A, 1438, 133–142.
270
R. Khan et al.
1. Agüera, A., Bueno, M. J. M., & Fernández-Alba, A. R. (2013). New trends in the analytical
determination of emerging contaminants and their transformation products in environmental
waters. Environmental Science and Pollution Research, 20(6), 3496–3515.
2. Al-Qaim, F. F., Abdullah, M. P., Othman, M. R., Latip, J., & Zakaria, Z. (2014).
Multi-residue analytical methodology-based liquid chromatography-time-of-flight-mass spectrometry for the analysis of pharmaceutical residues in surface water and effluents from
sewage treatment plants and hospitals. Journal of Chromatography A, 1345, 139–153.
3. Alvarez-Puebla, R. A., & Liz-Marzán, L. M. (2012). SERS detection of small inorganic
molecules and ions. Angewandte Chemie International Edition, 51(45), 11214–11223.
4. Arisido, M. W. (2015). Functional data analysis for environmental pollutants and health.
5. Asadnia, M., Kottapalli, A. G. P., Karavitaki, K. D., Warkiani, M. E., Miao, J., Corey, D. P.,
et al. (2016). From biological cilia to artificial flow sensors: Biomimetic soft polymer
nanosensors with high sensing performance. Scientific Reports, 6, 32955.
6. Asadnia, M., Myers, M., Umana-Membreno, G. A., Sanders, T. M., Mishra, U. K., Nener, B.
D., et al. (2017). Ca
2+ detection utilising AlGaN/GaN transistors with ion-selective polymer
membranes. Analytica Chimica Acta, 987, 105–110.
7. Auffan, M., Rose, J., Bottero, J. Y., Lowry, G. V., Jolivet, J. P., & Wiesner, M. R. (2009).
Towards a definition of inorganic nanoparticles from an environmental, health and safety
perspective. Nature Nanotechnology, 4(10), 634.
8. Bantz, K. C., Meyer, A. F., Wittenberg, N. J., Im, H., Kurtuluş, Ö., Lee, S. H., et al. (2011).
Recent progress in SERS biosensing. Physical Chemistry Chemical Physics, 13(24),
11551–11567.
9. Berlioz-Barbier, A., Vauchez, A., Wiest, L., Baudot, R., Vulliet, E., & Cren-Olivé, C. (2014).
Multi-residue analysis of emerging pollutants in sediment using QuEChERS-based extraction
followed by LC-MS/MS analysis. Analytical and Bioanalytical Chemistry, 406(4),
1259–1266.
10. Biver, E., Durosier-Izart, C., Chevalley, T., van Rietbergen, B., Rizzoli, R., & Ferrari, S.
(2018). Evaluation of radius microstructure and areal bone mineral density improves fracture
prediction in postmenopausal women. Journal of Bone and Mineral Research, 33(2),
328–337.
11. Bizkarguenaga, E., Ros, O., Iparraguirre, A., Navarro, P., Vallejo, A., Usobiaga, A., et al.
(2012). Solid-phase extraction combined with large volume injection-programmable temperature vaporization–gas chromatography–mass spectrometry for the multiresidue determination of priority and emerging organic pollutants in wastewater. Journal of Chromatography A,
1247, 104–117.
12. Buchberger, W. W. (2011). Current approaches to trace analysis of pharmaceuticals and
personal care products in the environment. Journal of Chromatography A, 1218(4), 603–618.
13. Cai, X., Gao, X., Wang, L., Wu, Q., & Lin, X. (2013). A layer-by-layer assembled and carbon
nanotubes/gold nanoparticles-based bienzyme biosensor for cholesterol detection. Sensors
and Actuators B: Chemical, 181, 575–583.
14. Cao, S., Sun, G., Zhang, Z., Chen, L., Feng, Q., Fu, B., et al. (2011). Greening China
naturally. Ambio, 40(7), 828–831.
15. Capozzi, M. E., DiMarchi, R. D., Tschöp, M. H., Finan, B., & Campbell, J. E. (2018).
Targeting the incretin/glucagon system with triagonists to treat diabetes. Endocrine Reviews,
39(5), 719–738.
16. Cavaliere, C., Capriotti, A. L., Ferraris, F., Foglia, P., Samperi, R., Ventura, S., et al. (2016).
Multiresidue analysis of endocrine-disrupting compounds and perfluorinated sulfates and
carboxylic acids in sediments by ultra-high-performance liquid chromatography–tandem mass
spectrometry. Journal of Chromatography A, 1438, 133–142.
270
R. Khan et al.
