Research Article
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Year 2020, Volume: 3 Issue: 2, 46 - 49, 30.06.2020
https://doi.org/10.35208/ert.717086

Abstract

References

  • Reference1 M. Di Benedetto, 1997, LES METAUX LOURDS 4-48
  • Reference2 J. RODIER, B. LEGUBE and N. MERLET, 2009, L’Analyse de l’eau 9e édition 1244
  • Reference3 Jean-Michel Balet, 2008, Aide-mémoire Gestion des déchets 2e édition. 121
  • Reference4 Y. ANDRÈS, C.FAUR-BRASQUET, C.GÉRENTE, P.LE CLOIREC, 2007, Techniques de l’Ingénieur w8000 Élimination des ions métalliques et des métalloïdes dans l'eau 5-6
  • Reference5 L. Youcef, S. Achour, 2006, Elimination Du Cuivre par Des Procèdes De Précipitation Chimique et d'adsorption 59-67
  • Reference6 P. RAJEC, L. MATEL, J. ORECHOVSDA, J. SUCHA, I. NOVAK, 1996, Sorption of radionuclides on inorganic sorbents. J. Radioanal. Nucl. Chem, Articles, 2008, 2, 477-486.
  • Reference7 S. Kadouche, 2013, Utilisation des biomatériaux dans le traitement des eaux 9-11, 112-126
  • Reference8 S. GHALI, 2008, Etude de la carbonisation d’un précurseur végétal, les noyaux d’olives. Utilisation dans le traitement des eaux 25-60
  • Reference9 Bendada, 2005, Etude expérimentale et modélisation de L'élimination des cations métalliques de L'acide phosphorique issu du procédé Humide. Application aux cas de L'aluminium, le fer et le cuivre, 32- 35,64
  • Reference10 F. Ghebghoub,2012 Effet du diluant sur l’extraction du cuivre(II), cobalt(II) et nickel(II) par l'acide di-(2-ethylhexyl) phosphorique 63-84
  • Reference11 M. Kermiche, S.Djerad, 2011, Desalination and Water Treatment Facilitated transport of copper through bulk liquid membrane containing di-2ethylhexyl phosphoric acid 261–269
  • Reference12 W. HONGSHUI, Q. Xueliang, C. Jianguo, D. Shiyuan, 2004, Preparation of silver nanoparticles by chemical reduction method,111-115
  • Reference13 V. Q. Khuong, V. D. Cao, T.B.T. Nguyen, Nguyen Thi Phuong phong, 2012, Synthesis and characterization of metallic copper nanoparticles at room temperature by hydrazine reduction method. Tap chi Khoa hoc va Cong nghe 50 (3C) 519– 524
  • Reference14 W. Songping, 2007, Preparation of fine copper powder using ascorbic acid as reducing agent and its application in MLCC. Materials letters 61 1125-1129.

Synthesis of copper particles and elimination of cupric ions by chemical reduction

Year 2020, Volume: 3 Issue: 2, 46 - 49, 30.06.2020
https://doi.org/10.35208/ert.717086

Abstract

Development of enhanced methods for copper particles synthesis is crucial for the improvement of material science and technology. Therefore, in this study a successful synthesis of copper metal was achieved by chemical reduction. Ascorbic acid was used as a reducing agent. In the presence of soda, copper sulphate pentahydrated (CuSO4, 5H2O) with acid ascorbic at 60 °C of temperature produced metallic copper powder with the total degradation (100%) of copper ions (Cu2+). The presence of hydroxide ions (OH-) is necessary to achieve and improve the chemical reduction reaction. Several parameters, as reducing agent volume, reaction temperature and soda quantity were investigated and checked their impact in this research study. The obtained powder was washed and dried in the fresh air then analysed by X-ray diffraction.

References

  • Reference1 M. Di Benedetto, 1997, LES METAUX LOURDS 4-48
  • Reference2 J. RODIER, B. LEGUBE and N. MERLET, 2009, L’Analyse de l’eau 9e édition 1244
  • Reference3 Jean-Michel Balet, 2008, Aide-mémoire Gestion des déchets 2e édition. 121
  • Reference4 Y. ANDRÈS, C.FAUR-BRASQUET, C.GÉRENTE, P.LE CLOIREC, 2007, Techniques de l’Ingénieur w8000 Élimination des ions métalliques et des métalloïdes dans l'eau 5-6
  • Reference5 L. Youcef, S. Achour, 2006, Elimination Du Cuivre par Des Procèdes De Précipitation Chimique et d'adsorption 59-67
  • Reference6 P. RAJEC, L. MATEL, J. ORECHOVSDA, J. SUCHA, I. NOVAK, 1996, Sorption of radionuclides on inorganic sorbents. J. Radioanal. Nucl. Chem, Articles, 2008, 2, 477-486.
  • Reference7 S. Kadouche, 2013, Utilisation des biomatériaux dans le traitement des eaux 9-11, 112-126
  • Reference8 S. GHALI, 2008, Etude de la carbonisation d’un précurseur végétal, les noyaux d’olives. Utilisation dans le traitement des eaux 25-60
  • Reference9 Bendada, 2005, Etude expérimentale et modélisation de L'élimination des cations métalliques de L'acide phosphorique issu du procédé Humide. Application aux cas de L'aluminium, le fer et le cuivre, 32- 35,64
  • Reference10 F. Ghebghoub,2012 Effet du diluant sur l’extraction du cuivre(II), cobalt(II) et nickel(II) par l'acide di-(2-ethylhexyl) phosphorique 63-84
  • Reference11 M. Kermiche, S.Djerad, 2011, Desalination and Water Treatment Facilitated transport of copper through bulk liquid membrane containing di-2ethylhexyl phosphoric acid 261–269
  • Reference12 W. HONGSHUI, Q. Xueliang, C. Jianguo, D. Shiyuan, 2004, Preparation of silver nanoparticles by chemical reduction method,111-115
  • Reference13 V. Q. Khuong, V. D. Cao, T.B.T. Nguyen, Nguyen Thi Phuong phong, 2012, Synthesis and characterization of metallic copper nanoparticles at room temperature by hydrazine reduction method. Tap chi Khoa hoc va Cong nghe 50 (3C) 519– 524
  • Reference14 W. Songping, 2007, Preparation of fine copper powder using ascorbic acid as reducing agent and its application in MLCC. Materials letters 61 1125-1129.
There are 14 citations in total.

Details

Primary Language English
Subjects Environmental Engineering
Journal Section Research Articles
Authors

Esma Mahfouf This is me 0000-0003-1202-6251

Souad Djerad 0000-0001-5767-4573

Raouf Bouchareb 0000-0001-5375-8163

Publication Date June 30, 2020
Submission Date April 9, 2020
Acceptance Date May 4, 2020
Published in Issue Year 2020 Volume: 3 Issue: 2

Cite

APA Mahfouf, E., Djerad, S., & Bouchareb, R. (2020). Synthesis of copper particles and elimination of cupric ions by chemical reduction. Environmental Research and Technology, 3(2), 46-49. https://doi.org/10.35208/ert.717086
AMA Mahfouf E, Djerad S, Bouchareb R. Synthesis of copper particles and elimination of cupric ions by chemical reduction. ERT. June 2020;3(2):46-49. doi:10.35208/ert.717086
Chicago Mahfouf, Esma, Souad Djerad, and Raouf Bouchareb. “Synthesis of Copper Particles and Elimination of Cupric Ions by Chemical Reduction”. Environmental Research and Technology 3, no. 2 (June 2020): 46-49. https://doi.org/10.35208/ert.717086.
EndNote Mahfouf E, Djerad S, Bouchareb R (June 1, 2020) Synthesis of copper particles and elimination of cupric ions by chemical reduction. Environmental Research and Technology 3 2 46–49.
IEEE E. Mahfouf, S. Djerad, and R. Bouchareb, “Synthesis of copper particles and elimination of cupric ions by chemical reduction”, ERT, vol. 3, no. 2, pp. 46–49, 2020, doi: 10.35208/ert.717086.
ISNAD Mahfouf, Esma et al. “Synthesis of Copper Particles and Elimination of Cupric Ions by Chemical Reduction”. Environmental Research and Technology 3/2 (June 2020), 46-49. https://doi.org/10.35208/ert.717086.
JAMA Mahfouf E, Djerad S, Bouchareb R. Synthesis of copper particles and elimination of cupric ions by chemical reduction. ERT. 2020;3:46–49.
MLA Mahfouf, Esma et al. “Synthesis of Copper Particles and Elimination of Cupric Ions by Chemical Reduction”. Environmental Research and Technology, vol. 3, no. 2, 2020, pp. 46-49, doi:10.35208/ert.717086.
Vancouver Mahfouf E, Djerad S, Bouchareb R. Synthesis of copper particles and elimination of cupric ions by chemical reduction. ERT. 2020;3(2):46-9.