AI Chat Paper
Note: Please note that the following content is generated by AMiner AI. SciOpen does not take any responsibility related to this content.
{{lang === 'zh_CN' ? '文章概述' : 'Summary'}}
{{lang === 'en_US' ? '中' : 'Eng'}}
Chat more with AI
PDF (3.2 MB)
Collect
Submit Manuscript AI Chat Paper
Show Outline
Outline
Show full outline
Hide outline
Outline
Show full outline
Hide outline
Research Article | Open Access

Rifampicin Nanopatricles: Thermodynamic Properties in KCl Electrolyte Using Cyclic Voltammetry

Sali Nabeel Jabrou1Muhammed Mizher Radhi1Emad Abbas Jaffar Al-Mulla2( )Ebaa Adnan Azooz3
Middle Technical University (MTU), Health and Medical Techniques College, Baghdad, Iraq
College of Health and Medical Techniques, Al-Furat Al-Awsat Technical University, An-Najaf, Iraq
Medical Laboratory Technology Department, College of Medical Technology, The Islamic University, Najaf, Iraq
Show Author Information

Graphical Abstract

Abstract

Rifampicin nanoparticles (RF NPs) was sunthesized by lyophilization method and characterized by using scanning electron spectroscopy (SEM) and atomic force spectroscopy (AFM). It is found that the dimension of the RF NPs was 85.74 nm. An electrochemical measurement approach has been used to examine the effects of various temperature degrees for a range of 30–70 °C on the redox current peaks of RF NPs in the KCl solution as an electrolyte. The results of the electrochemical analysis of RF NPs in KCl solution were obtained by the cyclic voltammetric method to find two oxidation peaks (I,II) at +900 and +225 mV, also two reduction peaks appeared at –680 and –300 mV. They were studied at different temperatures to identify the values of the activation energies (Ea*) of these peaks by Arrhenius equation as well as their thermodynamic values using the Eyring equation to determine the values of Gibbs activation energy (ΔG*), activation enthalpy (ΔH*), and activation entropy (ΔS*). RF NPs were analyzed through the effect of different temperatures on both the oxidation and reduction peaks, which showed that the high temperature leads to a catalytic state as an electrochemicalcatalyst.

References

[1]

M.M. Radhi, N.K. Al-Damlooji, B.K. Abed, et al. Electrochemical sensors for detecting Mn (II) in blood medium. Sensors and Transducers, 2013, 149(2): 89−93.

[2]

M.M. Radhi, W.T. Tan, M.Z.B. Ab Rahman, et al. Voltammetric detection of Mn(II) in blood sample at C60 and MWCNT modified glassy carbon electrodes. American Journal of Applied Sciences, 2010, 7(3): 395−401. https://doi.org/10.3844/ajassp.2010.395.401

[3]

M.M. Radhi, H.N. Abdullah, M.S. Jabir, et al. Electrochemical effect of ascorbic acid on redox current peaks of CoCl2 in blood medium. Nano Biomedicine and Engineering, 2017, 9(2): 103−106. https://doi.org/10.5101/nbe.v9i2.p103-106

[4]

M.M. Radhi, Z.N. Hamed, S.S. Ezzaldeen, et al. Effect of micro- and nanoparticles of ampicillin trihydrate on blood medium: A voltammetric study. Nano Biomedicine and Engineering, 2017, 9(3): 185−190. https://doi.org/10.5101/nbe.v9i3.p185-190

[5]

W.H. Hoidy, M.M. Radhi, M.F. Tareef, et al. Redox process of cardamom oil in human blood serum using cyclic voltammetry. Nano Biomedicine and Engineering, 2020, 12(1): 99−103. https://doi.org/10.5101/nbe.v12i1.p99-103

[6]

D. Kul. Electrochemical determination of rifampicin based on its oxidation using multi-walled carbon nanotube-modified glassy carbon electrodes. Turkish Journal of Pharmaceutical Sciences, 2020, 17(4): 398−407. https://doi.org/10.4274/tjps.galenos.2019.33600

[7]

M. Motiei, L. Pleno de Gouveia, T. Šopík, et al. Nanoparticle-based rifampicin delivery system development. Molecules, 2021, 26(7): 2067. https://doi.org/10.3390/molecules26072067

[8]

D. Da Costa, C. Exbrayat-Héritier, B. Rambaud, et al. Surface charge modulation of rifampicin-loaded PLA nanoparticles to improve antibiotic delivery in Staphylococcus aureus biofilms. Journal of Nanobiotechnology, 2021, 19(1): 12. https://doi.org/10.1186/s12951-020-00760-w

[9]

S. Subramaniam, N. Thomas, H. Gustafsson, et al. Rifampicin-loaded mesoporous silica nanoparticles for the treatment of intracellular infections. Antibiotics, 2019, 8(2): 39. https://doi.org/10.3390/antibiotics8020039

[10]

M.H. Sarah, M.M. Radhi, A.A. Mohsin. Study the effects of iodine nanoparticles contrast medium to enhancing the computed tomography imaging. Annals of the Romanian Society for Cell Biology, 2021, 25(6): 10174−10183.

[11]

H.F. Hetta, E.A. Ahmed, A.G. Hemdan, et al. Modulation of rifampicin-induced hepatotoxicity using poly(lactic-co-glycolic acid) nanoparticles: A study on rat and cell culture models. Nanomedicine, 2020, 15(14): 1375−1390. https://doi.org/10.2217/nnm-2020-0001

[12]
D.W. Yu, J.C. Xu, R.N. Li, et al. Synergetic effect of rifampin loaded mussel-inspired silver nanoparticles for enhanced antibacterial activity against multidrug-resistant strain of Mycobacterium tuberculosis. ChemistrySelect, 2021, 6(39): 10682–10687.
[13]

W.T. Tan, J.K. Goh . Electrochemical oxidation of methionine mediated by a fullerene-C60 modified gold electrode. Electroanalysis, 2008, 20(22): 2447−2453. https://doi.org/10.1002/elan.200704335

[14]

D.D. Bao, B. Millare, W. Xia, et al. Electrochemical oxidation of ferrocene: A strong dependence on the concentration of the supporting electrolyte for nonpolar solvents. The Journal of Physical Chemistry A, 2009, 113(7): 1259−1267. https://doi.org/10.1021/jp809105f

[15]

F.H.J. Al-Shemmari, E.A.J. Al-Mulla, A.A. Rabah. A comparative study of different surfactants for natural rubber clay nanocomposite preparation. Rendiconti Lincei, 2014, 25(3): 409−413. https://doi.org/10.1007/s12210-014-0307-z

[16]

S.A. AL-Asadi, M.M. Radhi, W.H. Hoidy. Thermodynamic properties of rifampicin redox current peaks in human blood samples using nano-sensor (carbon nanotubes/glassy carbon electrode). Journal of the Chemical Society of Pakistan, 2021, 43(1): 41. https://doi.org/10.52568/000557

[17]

S. Maghrebi, N. Thomas, C.A. Prestidge, et al. Inulin-lipid hybrid (ILH) microparticles promote pH-triggered release of rifampicin within infected macrophages. Drug Delivery and Translational Research, 2023, 13(6): 1716−1729. https://doi.org/10.1007/s13346-022-01287-3

[18]

M.T. Hosamani, N.H. Ayachit, D.K. Deshpande. Activation energy (ΔG*), enthalpy (ΔH*), and entropy (ΔS*) of some indoles and certain of their binary mixtures. Journal of Thermal Analysis and Calorimetry, 2012, 107(3): 1301−1306. https://doi.org/10.1007/s10973-011-1547-0

[19]
S. Chapman, T.G. Cowling, The Mathematical Theory of Non-uniform Gases: An Account of the Kinetic Theory of Viscosity, Thermal Conduction and Diffusion in Gases 3rd Edition. Cambridge University Press, 1991.
[20]
F. Daniels, R.A. Alberty. Physical Chemistry 6th edition. John Wiley & Sons, 1984.
[21]

E.A.J. Al-Mulla. Preparation of polylactic acid/epoxidized palm oil/fatty nitrogen compounds modified clay nanocomposites by melt blending. Polymer Science Series A, 2011, 53(2): 149−157. https://doi.org/10.1134/S0965545X11020015

[22]

I.A. Mohammed, E.A.J. Al-Mulla, N.K.A. Kadar, et al. Structure-property studies of thermoplastic and thermosetting polyurethanes using palm and soya oils-based polyols. Journal of Oleo Science, 2013, 62(12): 1059−1072. https://doi.org/10.5650/jos.62.1059

[23]
P.W. Atkins, J. De Paula. Physical Chemistry for the Life Sciences. Oxford University Press, 2006.
[24]

E.A. Azooz, H.S.A. Al-Wani, M.S. Gburi, et al. Recent modified air-assisted liquid–liquid microextraction applications for medicines and organic compounds in various samples: A review. Open Chemistry, 2022, 20(1): 525−540. https://doi.org/10.1515/chem-2022-0174

[25]

H. Noor, I.G. David, M.L. Jinga, et al. State of the art on developments of (bio)sensors and analytical methods for rifamycin antibiotics determination. Sensors, 2023, 23(2): 976. https://doi.org/10.3390/s23020976

[26]

A.K.M. Al-Toriahi, E.A. Azooz, E.A.J. Al-Mulla. Metal nanoparticles and nano-filters for the disposal of hospital waste: A review. Nano Biomedicine and Engineering, 2023, 15(2): 179−190. https://doi.org/10.26599/nbe.2023.9290017

[27]

R. Ahmadi, E.A. Azooz, Y. Yamini, et al. Liquid-liquid microextraction techniques based on in situ formation/decomposition of deep eutectic solvents. TrAC Trends in Analytical Chemistry, 2023, 161: 117019. https://doi.org/10.1016/j.trac.2023.117019

Nano Biomedicine and Engineering
Pages 128-134
Cite this article:
Jabrou SN, Radhi MM, Al-Mulla EAJ, et al. Rifampicin Nanopatricles: Thermodynamic Properties in KCl Electrolyte Using Cyclic Voltammetry. Nano Biomedicine and Engineering, 2024, 16(1): 128-134. https://doi.org/10.26599/NBE.2024.9290046

646

Views

68

Downloads

2

Crossref

1

Scopus

Altmetrics

Received: 19 September 2023
Revised: 10 October 2023
Accepted: 16 October 2023
Published: 18 December 2023
© The Author(s) 2024.

This is an open-access article distributed under  the  terms  of  the  Creative  Commons  Attribution  4.0 International  License (CC BY) (http://creativecommons.org/licenses/by/4.0/), which  permits  unrestricted  use,  distribution,  and reproduction in any medium, provided the original author and source are credited.

Return