34
H. Kaur et al.
devising a portable hand-held ATR probe for on-site identification, ATR-FTIR spectroscopy is developing at a faster pace. It is commonly being used in conjunction with
the other techniques to attain a more refined analysis in the research and at the industrial scale for measurements and quality control. Therefore, further advances could
be anticipated in the infrared vibrational spectroscopic field that would improve the
availability, easy usage, and the analytical approach in the molecular spectroscopy.
Acknowledgements The authors acknowledge research support from the Center for Biomedical
Engineering and Department of Physics, Indian Institute of Technology Ropar for SEED Grant and
Defence Research and Development Organisation (ERIP/ER/1500487/M/01/1602).
References
1. M. Milosevic, Internal Reflection and ATR Spectroscopy (Wiley, Hoboken, New Jersey, 2012).
2. N. Sheppard, in Handbook of Vibrational Spectroscopy, ed. by J.M. Chalmers, P.R. Griffiths
(John Wiley and Sons, 2002), pp. 17–30.
3. C.R. Baiz, B. Błasiak, J. Bredenbeck, M. Cho, J.H. Choi, S.A. Corcelli, A.G. Dijkstra, C.J.
Feng, S. Garrette-Roe, N.H. Ge, M.W.D. Hanson-Heine, J.D. Hirst, T.L.C. Jansen, K. Kwac,
K.J. Kubarych, C.H. Londergan, H. Maekawa, M. Reppert, S. Saito, S. Roy, J.L. Skinner, G.
Stock, J.E. Straub, M.C. Thielges, K. Tominaga, A. Tokmakoff, H. Torii, L. Wang, L.J. Webb,
M.T. Zanni, Chem. Rev. 120, 7152–7218 (2020)
4. L. Cammarata, S.G. Kazarian, P.A. Salter, T. Welton, Phys. Chem. Chem. Phys. 3, 5192–5200
(2001)
5. M.M. Blum, H. John, Drug Test. Anal. 4, 298–302 (2012)
6. N.J. Harrick, J. Phys. Chem. 64, 1110–1114 (1960)
7. J. Fahrenfort, Spectrochim. Acta 17, 698–709 (1961)
8. M. Dendisova, A. Jenistova, A. Parchanska-Kokaislova, P. Matejka, V. Prokopec, M. Svecova,
Anal. Chim. Acta 1031, 1–14 (2018)
9. A.R. Hind, S.K. Bhargava, A. McKinnon, Adv. Colloid Interface Sci. 93, 91–114 (2001)
10. A. Barth, Biochim. Biophys. Acta Bioenerg. 1767, 1073–1101 (2007)
11. A.M. Pereira, M.C. Lopes, J.M.K. Timmer, J.T.F. Keurentjes, J. Memb. Sci. 260, 174–180
(2005)
12. F. Faghihzadeh, N.M. Anaya, L.A. Schifman, V. Oyanedel-Craver, Nanotechnol. Environ. Eng.
1 (2016)
13. S. Roy, D. Perez-Guaita, D.W. Andrew, J.S. Richards, D. McNaughton, P. Heraud, B.R. Wood,
Anal. Chem. 89, 5238–5245 (2017)
14. H.J. Butler, B.R. Smith, R. Fritzsch, P. Radhakrishnan, D.S. Palmer, M.J. Baker, Analyst 143,
6121–6134 (2018)
15. D. Perez-Guaita, Z. Richardson, P. Heraud, B. Wood, Anal. Chem. 92, 2409–2416 (2020)
16. F. Shi, P.N. Ross, G.A. Somorjai, K. Komvopoulos, J. Phys. Chem. C 121, 14476–14483 (2017)
17. A. Idris, A.F. Ismail, M. Noorhayati, S.J. Shilton, J. Memb. Sci. 213, 45–54 (2003)
18. V.O. Kollath, Y. Liang, F.D. Mayer, X. Ma, C. Korzeniewski, K. Karan, J. Phys. Chem. C 122,
9578–9585 (2018)
19. S. Kumar, R. Lahlali, X. Liu, C. Karunakaran, Appl. Spectrosc. Rev. 51, 466–483 (2016)
20. K.A. Chan, S.G. Kazarian, Chem. Soc. Rev. 45, 1850–1864 (2016)
21. S.G. Kazarian, K.A. Chan, V. Maquet, A.R. Boccaccini, Biomaterials 25, 3931–3938 (2004)
22. P.R. Griffiths, J.A. De Haseth, Fourier Transform Infrared Spectrometry, 2nd edn. (Wiley,
Hoboken, New Jersey, 2007).
H. Kaur et al.
devising a portable hand-held ATR probe for on-site identification, ATR-FTIR spectroscopy is developing at a faster pace. It is commonly being used in conjunction with
the other techniques to attain a more refined analysis in the research and at the industrial scale for measurements and quality control. Therefore, further advances could
be anticipated in the infrared vibrational spectroscopic field that would improve the
availability, easy usage, and the analytical approach in the molecular spectroscopy.
Acknowledgements The authors acknowledge research support from the Center for Biomedical
Engineering and Department of Physics, Indian Institute of Technology Ropar for SEED Grant and
Defence Research and Development Organisation (ERIP/ER/1500487/M/01/1602).
References
1. M. Milosevic, Internal Reflection and ATR Spectroscopy (Wiley, Hoboken, New Jersey, 2012).
2. N. Sheppard, in Handbook of Vibrational Spectroscopy, ed. by J.M. Chalmers, P.R. Griffiths
(John Wiley and Sons, 2002), pp. 17–30.
3. C.R. Baiz, B. Błasiak, J. Bredenbeck, M. Cho, J.H. Choi, S.A. Corcelli, A.G. Dijkstra, C.J.
Feng, S. Garrette-Roe, N.H. Ge, M.W.D. Hanson-Heine, J.D. Hirst, T.L.C. Jansen, K. Kwac,
K.J. Kubarych, C.H. Londergan, H. Maekawa, M. Reppert, S. Saito, S. Roy, J.L. Skinner, G.
Stock, J.E. Straub, M.C. Thielges, K. Tominaga, A. Tokmakoff, H. Torii, L. Wang, L.J. Webb,
M.T. Zanni, Chem. Rev. 120, 7152–7218 (2020)
4. L. Cammarata, S.G. Kazarian, P.A. Salter, T. Welton, Phys. Chem. Chem. Phys. 3, 5192–5200
(2001)
5. M.M. Blum, H. John, Drug Test. Anal. 4, 298–302 (2012)
6. N.J. Harrick, J. Phys. Chem. 64, 1110–1114 (1960)
7. J. Fahrenfort, Spectrochim. Acta 17, 698–709 (1961)
8. M. Dendisova, A. Jenistova, A. Parchanska-Kokaislova, P. Matejka, V. Prokopec, M. Svecova,
Anal. Chim. Acta 1031, 1–14 (2018)
9. A.R. Hind, S.K. Bhargava, A. McKinnon, Adv. Colloid Interface Sci. 93, 91–114 (2001)
10. A. Barth, Biochim. Biophys. Acta Bioenerg. 1767, 1073–1101 (2007)
11. A.M. Pereira, M.C. Lopes, J.M.K. Timmer, J.T.F. Keurentjes, J. Memb. Sci. 260, 174–180
(2005)
12. F. Faghihzadeh, N.M. Anaya, L.A. Schifman, V. Oyanedel-Craver, Nanotechnol. Environ. Eng.
1 (2016)
13. S. Roy, D. Perez-Guaita, D.W. Andrew, J.S. Richards, D. McNaughton, P. Heraud, B.R. Wood,
Anal. Chem. 89, 5238–5245 (2017)
14. H.J. Butler, B.R. Smith, R. Fritzsch, P. Radhakrishnan, D.S. Palmer, M.J. Baker, Analyst 143,
6121–6134 (2018)
15. D. Perez-Guaita, Z. Richardson, P. Heraud, B. Wood, Anal. Chem. 92, 2409–2416 (2020)
16. F. Shi, P.N. Ross, G.A. Somorjai, K. Komvopoulos, J. Phys. Chem. C 121, 14476–14483 (2017)
17. A. Idris, A.F. Ismail, M. Noorhayati, S.J. Shilton, J. Memb. Sci. 213, 45–54 (2003)
18. V.O. Kollath, Y. Liang, F.D. Mayer, X. Ma, C. Korzeniewski, K. Karan, J. Phys. Chem. C 122,
9578–9585 (2018)
19. S. Kumar, R. Lahlali, X. Liu, C. Karunakaran, Appl. Spectrosc. Rev. 51, 466–483 (2016)
20. K.A. Chan, S.G. Kazarian, Chem. Soc. Rev. 45, 1850–1864 (2016)
21. S.G. Kazarian, K.A. Chan, V. Maquet, A.R. Boccaccini, Biomaterials 25, 3931–3938 (2004)
22. P.R. Griffiths, J.A. De Haseth, Fourier Transform Infrared Spectrometry, 2nd edn. (Wiley,
Hoboken, New Jersey, 2007).
