Ag-Coated Super Duplex Stainless Steel AISI2507 with or without Crystallization of Secondary Phase as Advanced Li-Ion Battery Case Material
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Heat Treatment
2.3. Ag Coating
2.4. Electrochemical Behavior
3. Results
3.1. Effect of Heat Treatment on Microstructure
3.2. Effect of Ag Coating
3.3. Electrochemical Behavior
4. Conclusions
- (1)
- Secondary phases began to crystallize at grain boundaries during the growth of austenite, displaying irregular shapes as they grew. At 1000 °C, the secondary phase constituted 10% of the microstructure and grew predominantly as (111) and (110). The grain size of the secondary phase precipitated at the austenite grain boundaries was found to be <10 μm, which was significantly smaller compared to that of austenite (20–40 μm) and ferrite (over 40 μm). These secondary phases were identified as sigma (σ), chi (χ), and CrN.
- (2)
- Surface characteristics were analyzed to evaluate the effects of the secondary phases on the Ag coating. After Ag coating, the surface roughness decreased from 0.15 and 0.10 μm to 0.05 μm, indicating that the Ag coating was not affected by the presence of the secondary phases. However, crystallization of the secondary phases influenced the electrical conductivity. Whereas ICAS increased from 1.9% to 58.8% after Ag coating, it decreased to 53.6% upon the precipitation of secondary phases due to increased grain boundary resistance and the segregation of the chemical composition.
- (3)
- Electrochemical analysis of the Ag-coated surface revealed the presence of microgaps where NaCl ions could react. The OCP ranged from −0.10 to −0.02 V due to reactions occurring at the microgaps, with secondary phases contributing to a decrease in the potential. The EIS analysis results showed that whereas the Ag coating formed uniformly irrespective of the presence of secondary phases, differences were observed in the passivation layer of the substrate.
- (4)
- Regarding the potential application of SDSS AISI2507 as an Li-ion battery case material, a 0.9 μm Ag coating achieved excellent electrical conductivity. However, the surface roughness was not stabilized and the uniform coating layer presented exposed areas susceptible to NaCl ion contact. Thus, although AISI2507 shows potential as an efficient Li-ion battery material, it is crucial to control its surface roughness and precipitation of the secondary phases to ensure the formation of a uniform plating layer.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Park, J.; Fatima, S.A. A DFT Study of TiC3 as Anode Material for Li-Ion Batteries. Appl. Surf. Sci. 2023, 638, 158024. [Google Scholar] [CrossRef]
- Cicconi, P.; Kumar, P.; Varshney, P. A Support Approach for the Modular Design of Li-Ion Batteries: A Test Case with PCM. J. Energy Storage 2020, 31, 101684. [Google Scholar] [CrossRef]
- Bizeray, A.M.; Howey, D.A.; Monroe, C.W. Resolving a Discrepancy in Diffusion Potentials, with a Case Study for Li-Ion Batteries. J. Electrochem. Soc. 2016, 163, E223. [Google Scholar] [CrossRef]
- Kale, R.B.; More, S.S.; Khupse, N.D.; Kalubarme, R.S.; Kulkarni, M.V.; Rane, S.B.; Kale, B.B. High-Voltage Ionic Liquid-Based Flexible Solid Polymer Electrolyte for High-Performance Li-Ion Batteries. Sustain. Energy Fuels 2023, 7, 2934–2942. [Google Scholar] [CrossRef]
- Petit, M.; Prada, E.; Sauvant-Moynot, V. Development of an Empirical Aging Model for Li-Ion Batteries and Application to Assess the Impact of Vehicle-to-Grid Strategies on Battery Lifetime. Appl. Energy 2016, 172, 398–407. [Google Scholar] [CrossRef]
- Klink, J.; Hebenbrock, A.; Grabow, J.; Orazov, N.; Nylén, U.; Benger, R.; Beck, H.-P. Comparison of Model-Based and Sensor-Based Detection of Thermal Runaway in Li-Ion Battery Modules for Automotive Application. Batteries 2022, 8, 34. [Google Scholar] [CrossRef]
- Chang, W.-S.; Park, C.-M.; Kim, J.-H.; Kim, Y.-U.; Jeong, G.; Sohn, H.-J. Quartz (SiO2): A New Energy Storage Anode Material for Li-Ion Batteries. Energy Environ. Sci. 2012, 5, 6895–6899. [Google Scholar] [CrossRef]
- Mayyas, A.; Steward, D.; Mann, M. The Case for Recycling: Overview and Challenges in the Material Supply Chain for Automotive Li-Ion Batteries. Sustain. Mater. Technol. 2019, 19, e00087. [Google Scholar] [CrossRef]
- Rahman, A.; Lin, X.; Wang, C. Li-Ion Battery Anode State of Charge Estimation and Degradation Monitoring Using Battery Casing via Unknown Input Observer. Energies 2022, 15, 5662. [Google Scholar] [CrossRef]
- Tudoroiu, N.; Zaheeruddin, M.; Tudoroiu, R.-E.; Radu, M.S.; Chammas, H. Investigations on Using Intelligent Learning Techniques for Anomaly Detection and Diagnosis in Sensors Signals in Li-Ion Battery—Case Study. Inventions 2023, 8, 74. [Google Scholar] [CrossRef]
- Rahman, A.; Lin, X. Li-Ion Battery Individual Electrode State of Charge and Degradation Monitoring Using Battery Casing through Auto Curve Matching for Standard CCCV Charging Profile. Appl. Energy 2022, 321, 119367. [Google Scholar] [CrossRef]
- Tudoroiu, R.-E.; Zaheeruddin, M.; Tudoroiu, N.; Radu, S.M.; Chammas, H. Investigations of Different Approaches for Controlling the Speed of an Electric Motor with Nonlinear Dynamics Powered by a Li-Ion Battery-Case Study. In Electric Vehicles-Design, Modelling and Simulation; IntechOpen: London, UK, 2023. [Google Scholar]
- Mai, L.; Li, L.; Yang, J.; Tan, R.; Shu, W.; Low, C.J.; Zhang, Z.; Zhao, Y.; Li, C.; Zhang, Y. Industrial-Scale Nonmetal Current Collectors Designed to Regulate Heat Transfer and Enhance Battery Safety. Preprint, 2023. [Google Scholar] [CrossRef]
- Trinh, L.N.; Lee, D. The Characteristics of Laser Welding of a Thin Aluminum Tab and Steel Battery Case for Lithium-Ion Battery. Metals 2020, 10, 842. [Google Scholar] [CrossRef]
- Hariharan, S.; Saravanan, K.; Ramar, V.; Balaya, P. A Rationally Designed Dual Role Anode Material for Lithium-Ion and Sodium-Ion Batteries: Case Study of Eco-Friendly Fe3O4. Phys. Chem. Chem. Phys. 2013, 15, 2945–2953. [Google Scholar] [CrossRef] [PubMed]
- Hoosain, S.E.; Tshabalala, L.C.; Skhosana, S.; Freemantle, C.; Mndebele, N. Investigation of the Properties of Direct Energy Deposition Additive Manufactured 304 Stainless Steel. S. Afr. J. Ind. Eng. 2021, 32, 258–263. [Google Scholar] [CrossRef]
- Acharyya, S.G.; Khandelwal, A.; Kain, V.; Kumar, A.; Samajdar, I. Surface Working of 304L Stainless Steel: Impact on Microstructure, Electrochemical Behavior and SCC Resistance. Mater. Charact. 2012, 72, 68–76. [Google Scholar] [CrossRef]
- Speidel, M.O. Nitrogen Containing Austenitic Stainless Steels. Mater. Und Werkst. Entwickl. Fert. Prüfung Eig. Und Anwendungen Tech. Werkst. 2006, 37, 875–880. [Google Scholar] [CrossRef]
- Banaszczyk, J.; De Mey, G.; Anca, A.; Schwarz, A.; Van Langenhove, L. Contact Resistance Investigation between Stainless Steel Electroconductive Yarns. In Proceedings of the 2009 MIXDES-16th International Conference Mixed Design of Integrated Circuits & Systems, Lodz, Poland, 25–27 June 2009; IEEE: Piscataway, NJ, USA, 2009; pp. 417–419. [Google Scholar]
- Nilsson, J.-O. Super Duplex Stainless Steels. Mater. Sci. Technol. 1992, 8, 685–700. [Google Scholar] [CrossRef]
- Fande, A.W.; Taiwade, R. V Welding of Super Duplex Stainless Steel and Austenitic Stainless Steel:# Xd; Influence and Role of Bicomponent Fluxes. Mater. Manuf. Process. 2023, 38, 434–448. [Google Scholar]
- Tehovnik, F.; Arzensek, B.; Arh, B.; Skobir, D.; Pirnar, B.; Zuzek, B. Microstructure Evolution in SAF 2507 Super Duplex Stainless Steel. Mater. Technol. 2011, 45, 339–345. [Google Scholar]
- Linton, V.M.; Laycock, N.J.; Thomsen, S.J.; Klumpers, A. Failure of a Super Duplex Stainless Steel Reaction Vessel. Eng. Fail. Anal. 2004, 11, 243–256. [Google Scholar] [CrossRef]
- Lervåg, M.; Sørensen, C.; Robertstad, A.; Brønstad, B.M.; Nyhus, B.; Eriksson, M.; Aune, R.; Ren, X.; Akselsen, O.M.; Bunaziv, I. Additive Manufacturing with Superduplex Stainless Steel Wire by Cmt Process. Metals 2020, 10, 272. [Google Scholar] [CrossRef]
- Ha, H.-Y.; Lee, T.-H.; Bae, J.-H.; Chun, D.W. Molybdenum Effects on Pitting Corrosion Resistance of FeCrMnMoNC Austenitic Stainless Steels. Metals 2018, 8, 653. [Google Scholar] [CrossRef]
- Metikoš-Huković, M.; Babić, R.; Grubač, Z.; Petrović, Ž.; Lajçi, N. High Corrosion Resistance of Austenitic Stainless Steel Alloyed with Nitrogen in an Acid Solution. Corros. Sci. 2011, 53, 2176–2183. [Google Scholar] [CrossRef]
- Wang, D.; Li, F.; Liu, M.; Zhang, W.; Yu, X.; Da, W. Effect of Nanodiamond Content in the Plating Solution on the Corrosion Resistance of Nickel–Nanodiamond Composite Coatings Prepared on Annealed 45 Carbon Steel. Coatings 2022, 12, 1558. [Google Scholar] [CrossRef]
- Lee, H.-B.; Sheu, H.-H.; Jian, J.-S.; Chang, S.-Y.; Yen, C.-H.; Lin, H.-E. Supercritical-CO2 Electroless Nickel Plating Enhanced Anti-Corrosion Properties of Micro-Arc Oxidized AZ31 Magnesium Alloy. Mater. Today Commun. 2022, 33, 104475. [Google Scholar] [CrossRef]
- Jiang, S.; Xu, J.; Chen, Z.; Guo, R.; Miao, D.; Peng, L.; Wang, Y.; Shang, S. Enhanced Electro-Conductivity and Multi-Shielding Performance with Copper, Stainless Steel and Titanium Coating onto PVA Impregnated Cotton Fabric. J. Mater. Sci. Mater. Electron. 2018, 29, 5624–5633. [Google Scholar] [CrossRef]
- Paulraj, P.; Garg, R. Effect of Intermetallic Phases on Corrosion Behavior and Mechanical Properties of Duplex Stainless Steel and Super-Duplex Stainless Steel. Adv. Sci. Technol. Res. J. 2015, 9, 87–105. [Google Scholar] [CrossRef]
- Li, Y.; Chen, C.; Qin, G.; Jiang, Z.; Sun, M.; Chen, K. Influence of Crucible Material on Inclusions in 95Cr Saw-Wire Steel Deoxidized by Si-Mn. Int. J. Miner. Metall. Mater. 2020, 27, 1083–1099. [Google Scholar] [CrossRef]
- Elhoud, A.M.; Renton, N.C.; Deans, W.F. Hydrogen Embrittlement of Super Duplex Stainless Steel in Acid Solution. Int. J. Hydrogen Energy 2010, 35, 6455–6464. [Google Scholar] [CrossRef]
- Kannan, A.R.; Shanmugam, N.S.; Rajkumar, V.; Vishnukumar, M. Insight into the Microstructural Features and Corrosion Properties of Wire Arc Additive Manufactured Super Duplex Stainless Steel (ER2594). Mater. Lett. 2020, 270, 127680. [Google Scholar] [CrossRef]
- Sung, C.; Shin, B.-H.; Chung, W. Effect of Solution Annealing on Austenite Morphology and Pitting Corrosion of Super Duplex Stainless Steel UNS S 32750. Int. J. Electrochem. Sci. 2021, 16, 210813. [Google Scholar] [CrossRef]
- Gasana, E.; Westbroek, P.; Hakuzimana, J.; De Clerck, K.; Priniotakis, G.; Kiekens, P.; Tseles, D. Electroconductive Textile Structures through Electroless Deposition of Polypyrrole and Copper at Polyaramide Surfaces. Surf. Coat. Technol. 2006, 201, 3547–3551. [Google Scholar] [CrossRef]
- Ghosh, S.K.; Grover, A.K.; Dey, G.K.; Totlani, M.K. Nanocrystalline Ni–Cu Alloy Plating by Pulse Electrolysis. Surf. Coat. Technol. 2000, 126, 48–63. [Google Scholar] [CrossRef]
- Goksu, E.I.; Vanegas, J.M.; Blanchette, C.D.; Lin, W.-C.; Longo, M.L. AFM for Structure and Dynamics of Biomembranes. Biochim. Biophys. Acta (BBA)-Biomembr. 2009, 1788, 254–266. [Google Scholar] [CrossRef] [PubMed]
- Bogdan, D.; Grosu, I.-G.; Filip, C. How Thick, Uniform and Smooth Are the Polydopamine Coating Layers Obtained under Different Oxidation Conditions? An in-Depth AFM Study. Appl. Surf. Sci. 2022, 597, 153680. [Google Scholar] [CrossRef]
- Rybalka, K.V.; Beketaeva, L.A.; Davydov, A.D. Electrochemical Behavior of Stainless Steel in Aerated NaCl Solutions by Electrochemical Impedance and Rotating Disk Electrode Methods. Russ. J. Electrochem. 2006, 42, 370–374. [Google Scholar] [CrossRef]
- Faraji, H.; Teggar, M.; Arshad, A.; Arıcı, M.; Berra, E.M.; Choukairy, K. Lattice Boltzmann Simulation of Natural Convection Heat Transfer Phenomenon for Thermal Management of Multiple Electronic Components. Therm. Sci. Eng. Prog. 2023, 45, 102126. [Google Scholar] [CrossRef]
- Masarapu, C.; Subramanian, V.; Zhu, H.; Wei, B. Long-Cycle Electrochemical Behavior of Multiwall Carbon Nanotubes Synthesized on Stainless Steel in Li Ion Batteries. Adv. Funct. Mater. 2009, 19, 1008–1014. [Google Scholar] [CrossRef]
- Amatsuka, S.; Nishimoto, M.; Muto, I.; Kawamori, M.; Takara, Y.; Sugawara, Y. Micro-Electrochemical Insights into Pit Initiation Site on Aged UNS S32750 Super Duplex Stainless Steel. Npj Mater. Degrad. 2023, 7, 15. [Google Scholar] [CrossRef]
- Nilsson, J.O.; Wilson, A. Influence of Isothermal Phase Transformations on Toughness and Pitting Corrosion of Super Duplex Stainless Steel SAF 2507. Mater. Sci. Technol. 1993, 9, 545–554. [Google Scholar] [CrossRef]
- Shin, B.-H.; Park, J.; Kim, S.; Ok, J.-W.; Kim, D.-I.; Yoon, J.-H. Study of Electroless Nickel Plating on Super Duplex Stainless Steel for Lithium-Ion Battery Cases: Electrochemical Behaviour and Effects of Plating Time. Metals 2024, 14, 307. [Google Scholar] [CrossRef]
- Martins, M.; Casteletti, L.C. Sigma Phase Morphologies in Cast and Aged Super Duplex Stainless Steel. Mater. Charact. 2009, 60, 792–795. [Google Scholar] [CrossRef]
- Pettersson, N.; Pettersson, R.F.A.; Wessman, S. Precipitation of Chromium Nitrides in the Super Duplex Stainless Steel 2507. Metall. Mater. Trans. A 2015, 46, 1062–1072. [Google Scholar] [CrossRef]
- Sung, C.; Kim, K.; Chung, W.; Shin, B.-H. Electrochemical Properties of UNS S 32750 and UNS S 32760 Annealed Super Duplex Stainless Steels. Int. J. Electrochem. Sci. 2022, 17, 220526. [Google Scholar] [CrossRef]
- Topolska, S.; Łabanowski, J. Effect of Microstructure on Impact Toughness of Duplex and Superduplex Stainless Steels. J. Achiev. Mater. Manuf. Eng. 2009, 36, 142–149. [Google Scholar]
- Sung, C.; Shin, B.-H.; Chung, W. Effect of Heat Energy Input on Electrochemical Properties of Solution-Annealed Super-Duplex Stainless Steel UNS S 32750 Laser Welding. Int. J. Electrochem. Sci. 2022, 17, 220339. [Google Scholar] [CrossRef]
- Shin, B.-H.; Kim, S.; Park, J.; Ok, J.-W.; Kim, D.-I.; Kim, D.; Yoon, J.-H. Effect of Secondary Phase on Electroless Ni Plating Behaviour of Super Duplex Stainless Steel SAF2507 for Advanced Li-Ion Battery Case. Materials 2024, 17, 1441. [Google Scholar] [CrossRef] [PubMed]
- Moniruzzaman, F.N.U.M.; Shakil, S.I.; Shaha, S.K.; Kacher, J.; Nasiri, A.; Haghshenas, M.; Hadadzadeh, A. Study of Direct Aging Heat Treatment of Additively Manufactured PH13–8Mo Stainless Steel: Role of the Manufacturing Process, Phase Transformation Kinetics, and Microstructure Evolution. J. Mater. Res. Technol. 2023, 24, 3772–3787. [Google Scholar] [CrossRef]
- Fréchard, S.; Martin, F.; Clément, C.; Cousty, J. AFM and EBSD Combined Studies of Plastic Deformation in a Duplex Stainless Steel. Mater. Sci. Eng. A 2006, 418, 312–319. [Google Scholar] [CrossRef]
- Rajesh, D.; Sunandana, C.S. XRD, Optical and AFM Studies on Pristine and Partially Iodized Ag Thin Film. Results Phys. 2012, 2, 22–25. [Google Scholar] [CrossRef]
- Sen, S.K.; Paul, T.C.; Dutta, S.; Hossain, M.N.; Mia, M.N.H. XRD Peak Profile and Optical Properties Analysis of Ag-Doped h-MoO 3 Nanorods Synthesized via Hydrothermal Method. J. Mater. Sci. Mater. Electron. 2020, 31, 1768–1786. [Google Scholar] [CrossRef]
- Rajesh, D.; Sunandana, C.S. Briefly Brominated Ag Thin Films: XRD, FESEM, and Optical Studies of Surface Modification. Appl. Surf. Sci. 2012, 259, 276–282. [Google Scholar] [CrossRef]
Cr | Ni | Mo | N | C | Mn | Fe | PREN | |
---|---|---|---|---|---|---|---|---|
wt.% | 25.2 | 6.8 | 3.8 | 0.27 | 0.01 | 0.8 | Bal | 41.9 |
Current | Vapor Time | Pressure | |
---|---|---|---|
Value | 80 A | 20 min | 1.2 × 10−6 tor |
Unit: wt.% | Cr | Mo | Ni | Mn | Fe |
---|---|---|---|---|---|
Sigma, σ | 37.2 ± 2.4 | 8.9 ± 1.0 | 4.5 ± 0.4 | 0.6 ± 0.1 | Bal |
Chi, χ | 21.2 ± 0.2 | 1.8 ± 0.1 | 8.5 ± 0.4 | 1.2 ± 0.2 | Bal |
Condition | (a) | (b) | (c) | (d) |
---|---|---|---|---|
Ra, μm | 0.15 ± 0.02 | 0.10 ± 0.02 | 0.05 ± 0.01 | 0.05 ± 0.01 |
Rpeak, μm | 1.20 ± 0.09 | 0.95 ± 0.10 | 0.38 ± 0.06 | 0.35 ± 0.05 |
Condition | Ag | (a) | (b) | (c) | (d) |
---|---|---|---|---|---|
Resistivity, ohm × m | 1596.4 × 10−6 | 0.9 × 10−6 | 0.9 × 10−6 | 32.0 × 10−6 | 29.3 × 10−6 |
Conductivity, S/m | 63.6 × 106 | 1.1 × 106 | 1.1 × 106 | 31.2 × 106 | 34.1 × 106 |
Electroconductivity (ICAS), % | 108.4 | 1.8 | 1.9 | 53.6 | 58.8 |
Condition | Rs (ohms) | CPE | RAg (kohms) | CPE | RP (kohms) | ||
---|---|---|---|---|---|---|---|
CAg | nAg | CP | nP | ||||
With secondary phase | 7 | 2.4 × 104 | 0.42 | 10 | 2.7 × 105 | 0.79 | 215 |
Without secondary phase | 7 | 2.4 × 104 | 0.42 | 10 | 3.2 × 105 | 0.74 | 247 |
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Jo, H.; Ok, J.-W.; Lee, Y.-S.; Je, Y.; Kim, S.; Kim, S.; Park, J.; Lee, J.; Shin, B.-H.; Yoon, J.-H.; et al. Ag-Coated Super Duplex Stainless Steel AISI2507 with or without Crystallization of Secondary Phase as Advanced Li-Ion Battery Case Material. Crystals 2024, 14, 653. https://doi.org/10.3390/cryst14070653
Jo H, Ok J-W, Lee Y-S, Je Y, Kim S, Kim S, Park J, Lee J, Shin B-H, Yoon J-H, et al. Ag-Coated Super Duplex Stainless Steel AISI2507 with or without Crystallization of Secondary Phase as Advanced Li-Ion Battery Case Material. Crystals. 2024; 14(7):653. https://doi.org/10.3390/cryst14070653
Chicago/Turabian StyleJo, Hyeongho, Jung-Woo Ok, Yoon-Seok Lee, Yonghun Je, Shinho Kim, Seongjun Kim, Jinyong Park, Jaeyeong Lee, Byung-Hyun Shin, Jang-Hee Yoon, and et al. 2024. "Ag-Coated Super Duplex Stainless Steel AISI2507 with or without Crystallization of Secondary Phase as Advanced Li-Ion Battery Case Material" Crystals 14, no. 7: 653. https://doi.org/10.3390/cryst14070653
APA StyleJo, H., Ok, J. -W., Lee, Y. -S., Je, Y., Kim, S., Kim, S., Park, J., Lee, J., Shin, B. -H., Yoon, J. -H., & Kim, Y. (2024). Ag-Coated Super Duplex Stainless Steel AISI2507 with or without Crystallization of Secondary Phase as Advanced Li-Ion Battery Case Material. Crystals, 14(7), 653. https://doi.org/10.3390/cryst14070653