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Radiation Effects and Defects in Solids
Incorporating Plasma Science and Plasma Technology
Volume 177, 2022 - Issue 9-10
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Articles

Si-ion implantation effects on the surface hardness and microstructure of brass alloy

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Pages 1103-1116 | Received 20 Oct 2021, Accepted 04 Aug 2022, Published online: 26 Aug 2022

References

  • Davis, J.R., Ed. ASM Specialty Handbook Copper and Copper Alloys; ASM International: Materials Park, OH, 2001; p 3.
  • Maki, K.; Ito, Y.; Matsunaga, H.; Mori, H. Solid –Solution Copper Alloys with High Strength and High Electrical Conductivity. Scr. Mater. 2013, 68, 777–780.
  • Feyullahoğlu, E.; Muzzaffer, Z.; Zeren, M. Tribological Behaviour of Tin-Based Materials and Brass in Oil Lubricated Conditions. Mater. Des. 2008, 29, 714–720.
  • Dong, X.H.; Hong, X.T.; Chen, F.; Sang, B.R.; Yu, W.; Zhang, X.P. Effect of Specimen and Grain Sizes on Compression Strength of Annealed Wrought Copper Alloy at Room Temperature. Mater. Des. 2014, 64, 400–406.
  • Ali, M.A.; Bashir, S.; Akram, M.; Mahmood, K.; Haq, F.; Hayat, A.; Mutaza, G.; Chishti, N.A.; Khan, M.A.; Ahmad, S. 3 MeV Proton Irradiation Effects on Surface, Structural, Field Emission and Electrical Properties of Brass. Nucl. Instrm. Methods Phys. Res. B 2018, 423, 7–15.
  • Ahmad, S.; Bashir, S.; Yousaf, D.; Ali, M.A. Modification in Cu-Zn Alloy Properties by 2 MeV Ni+ Ions Irradiation. Mater. Sci. Appl. 2018, 9, 330–344.
  • Lu, J.Z.; Duan, H.F.; Luo, K.Y.; Wu, L.J.; Deng, W.W.; Cai, J. Tensile Properties and Surface Nanocrystallization Analyses of H62 Brass Subjected to Room-Temperature and Warm Laser Shock Peening. J. Alloys Compd. 2017, 698, 633–642.
  • Zelaya, E.; Schryvers, D.; Tolley, A.; Fitchner, P.F.P. Cavity Nucleation and Growth in Cu–Zn–Al Irradiated with Cu+ Ions at Different Temperatures. Intermetallics 2010, 18, 493–498.
  • Zhao, Y.; Li, X.; Liu, C.; Yang, H.; Chen, B.; Qin, Y.; Xu, S.; Cheng, L.; Zhang, L. Irradiation Effects on Amosic-3 Silicon Carbide Composites by Si Ions Implantation. J. Eur. Ceram. Soc. 2019, 39, 4501–4509.
  • Jamesh, M.; Wu, G.; Zhao, Y.; Chu, P.K. Effects of Silicon Plasma Ion Implantation on Electrochemical Corrosion Behavior of Biodegradable Mg–Y–RE Alloy. Corros. Sci. 2013, 69, 158–163.
  • Perez, F.J.; Hierro, M.P.; Gomez, C.; Martınez, L.; Duday, D. Silicon Ion Implantation on Austenitic and Ferritic Stainless Steels Against Localized Aqueous Corrosion. Surf. Coat. Technol. 2000, 133-134, 344–350.
  • Shipilova, O.I.; Gorbunov, S.P.; Paperny, V.L.; Chernykh, A.A.; Dresvyansky, V.P.; Martynovich, E.F.; Rakevich, A.L. Fabrication of Metal-Dielectric Nanocomposites Using a Table-Top Ion Implanter. Surf. Coat. Technol. 2020, 393, 125742.
  • Panov, D.O.; Sokolovsky, V.S.; Stepanov, N.D.; Zherebtsov, S.V.; Panin, P.V.; Nochovnaya, N.A.; Salishchev, G.A. Oxidation Resistance and Thermal Stability of a β-Solidified γ-TiAl Based Alloy After Nitrogen ion Implantation. Corros. Sci. 2020, 170, 109003.
  • Manory, R.R.; Mollica, S.; Ward, L.; Purushotham, K.P.; Evans, P.; Noorman, J.; Perry, A.J. The Effects of MEVVA Ion Implantation on the Tribological Properties of PVD-TiN Films Deposited on Steel Substrates. Surf. Coat. Technol. 2002, 155, 136–140.
  • Nakamura, T.; Yoshino, M.; Tsuge, H.; Ikeda, K.; Kuriyama, K. Homogeneity Evaluation of Mg Implanted GaN Layer by On-Wafer Forward Diode Current Mapping. Surf. Coat. Technol. 2018, 355, 7–10.
  • Li, Y.; Li, M.; Utaka, Y.; Yang, C.; Wang, M. Effect of Copper Surface Modification Applied by Combined Modification of Metal Vapor Vacuum Arc Ion Implantation and Laser Texturing on Anti-Frosting Property. Energy Build. 2020, 223, 110132.
  • Tunes, M.A.; Greaves, G.; Bei, H.; Edmondson, P.D.; Zhang, Y.; Donnelly, S.E.; Schon, C.G. Comparative Irradiation Response of an Austenitic Stainless Steel with its High-Entropy Alloy Counterpart. Intermetallics 2021, 132, 107130.
  • Vishwakarma, S.B.; Dubey, S.K.; Dubey, R.L.; Bambole, V.; Sulania, I.; Kanjilal, D. Studies of SiO2 Thin Films Implanted with 100 keV Silicon Ions. Mater. Today: Proc. 2020, 23, 345–351.
  • Ziegler, J.F. SRIM-2013 Software Package. http://www.srim.org
  • Stopher, M.A. The Effects of Neutron Radiation on Nickel-Based Alloys. Mater. Sci. Technol. 2017, 33 (5), 518–536.
  • Afzal, N.; Rafique, M.; Javaida, W.; Ahmad, R.; Farooq, A.; Saleem, M.; Khaliq, Z. Influence of Carbon Ion Implantation Energy on Aluminum Carbide Precipitation and Electrochemical Corrosion Resistance of Aluminum. Nucl. Instrm. Methods Phys. Res. B 2018, 436, 84–91.
  • Shahnawaz, M. Study of the Effects of Ni Ion Implantation on Morphology, Structure, Hardness, and Electrical Conductivity of Brass. Surf. Interface Anal. 2021, 53, 627–636.
  • Shahnawaz, M.; Muhammad, N. Ti-Ion Implantation Effects on the Electrical Resistivity, Hardness and Microstructure of Brass Alloy. Surf. Rev. Lett. 2022, 29 (6), 2250082.
  • Cullity, B.D. In Elements of X-Ray Diffraction, 2nd ed.; Cohen, M., Ed.; Addison-Wesley: Reading, 1978; pp 96–102.
  • Shanmugan, S.; Mutharasu, D. An Effect of N+ Ion Bombardment on the Properties of CdTe Thin Films. Radiat. Phys. Chem. 2012, 81, 201–207.
  • Ahmad, S.; Bashir, S.; Rafique, M.S. The Generation,: Detection and Measurement of Laser-Induced Carbon Plasma Ions and Their Implantation Effects on Brass Substrate. Radiat. Eff. Defects Solids 2016, 171, 565–582.
  • Raji, P.; Kumar, K.B. Investigation of Ti Doping on the Structural: Optical, and Magnetic Properties of ZnO Nanoparticles. J. Mater. Sci.: Mater. Electron. 2021, 32, 11751–11762.
  • Pouraliakbar, H.; Jandaghi, M.R.; Baygi, S.J.M.; Khalaj, G. Microanalysis of Crystallographic Characteristics and Structural Transformations in SPDed AleMneSi Alloy by Dual-Straining. J. Alloys Compd. 2017, 696, 1189e1.
  • Jandaghi, M.R.; Pouraliakbar, H.; Saboori, A. Effect of Second Phase Particles Evolution and Lattice Transformations While Ultrafine Graining and Annealing on the Corrosion Resistance and Electrical Conductivity of Al-Mn-Si Alloy. Mater. Res. Express 2019, 6, 1065d9.
  • Shahnawaz, M.; Muhammad, N. Structural Characterization of Brass by Au Ion Implantation: Surface Analysis. Surf. Rev. Lett. 2022, 29 (3), 2250034.
  • Shahnawaz, M.; Muhammad, N. Surface Characterization of Brass Alloy in the Correlation of Hardness and Electrical Resistivity by Carbon Ion Implantation. Mater. Sci. Technol. 2021, 37 (18), 1483–1495.
  • Mahmood, K.; Bashir, S.; Haq, F.; Akram, M.; Hayat, A.; Rafique, M.S.; Mahmood, A. Surface, Structural, Electrical and Mechanical Modifications of Pulsed Laser Deposited ZrN Thin Films by Implantation of MeV Carbon Ions. Nucl. Instrm. Methods Phys. Res. B 2019, 448, 61–69.
  • Butt, M.Z.; Ali, D.; Aftab, M.; Bashir, F.; Khalid, M.L.; Khaliq, M.W. Role of Carbon Ions Implantation in Modifying the Structural, Electrical, and Mechanical Properties of W–8.57Ni–6.34Cu–1.34Mo Alloy. Phys. B 2019, 573, 49–61.
  • Sharkeev, Y.P.; Kozlov, E.V. The Long-Range Effect in Ion Implanted Metallic Materials: Dislocation Structures, Properties, Stresses, Mechanisms. Surf. Coat. Technol. 2002, 158–159, 219–224.
  • Syutkin, N.N. Structure of Ion-Implanted Alloys with Long-Range Order in a Field Ion Microscope. Russ. Phys. J. 2004, 47, 201–210.
  • Kavetskyy, T.; Stebeletska, N.; Borc, J.; Kravtsiv, M.; Graz, K.; Sausa, O.; Svajdlenkova, H.; Kleinova, A.; Kiv, A.; Tadeush, O.; Stepanov, A.L. Long-Range Effect in Ion-Implanted Polymers. Vacuum 2022, 200, 111038.

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