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In Situ EBSD Study of Stable Cube Texture in an Advanced Composite Substrate Used in YBCO-Coated Conductors

Published online by Cambridge University Press:  23 April 2020

Yaotang Ji
Affiliation:
Key Laboratory of Advanced Functional Materials, Ministry of Education, College of Materials Science and Engineering, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing100124, China
Hongli Suo*
Affiliation:
Key Laboratory of Advanced Functional Materials, Ministry of Education, College of Materials Science and Engineering, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing100124, China
ZiLi Zhang
Affiliation:
Institute of Electrical Engineering, Chinese Academy of Sciences, Beijing100190, China
Lin Ma
Affiliation:
Key Laboratory of Advanced Functional Materials, Ministry of Education, College of Materials Science and Engineering, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing100124, China
Jiazhi Li
Affiliation:
Key Laboratory of Advanced Functional Materials, Ministry of Education, College of Materials Science and Engineering, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing100124, China
Chenxi Zhang
Affiliation:
Key Laboratory of Advanced Functional Materials, Ministry of Education, College of Materials Science and Engineering, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing100124, China
Xinyu Wu
Affiliation:
Key Laboratory of Advanced Functional Materials, Ministry of Education, College of Materials Science and Engineering, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing100124, China
Shaheen Kausar
Affiliation:
Key Laboratory of Advanced Functional Materials, Ministry of Education, College of Materials Science and Engineering, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing100124, China Department of Physics, Jinnah College for Women, University of Peshawar, Peshawar25120, Khyber Pakhtunkhwa, Pakistan
Jin Cui
Affiliation:
Key Laboratory of Advanced Functional Materials, Ministry of Education, College of Materials Science and Engineering, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing100124, China
Min Liu
Affiliation:
Key Laboratory of Advanced Functional Materials, Ministry of Education, College of Materials Science and Engineering, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing100124, China
Yi Wang
Affiliation:
Key Laboratory of Advanced Functional Materials, Ministry of Education, College of Materials Science and Engineering, Beijing University of Technology, 100 Pingleyuan, Chaoyang District, Beijing100124, China
Qiuliang Wang
Affiliation:
Institute of Electrical Engineering, Chinese Academy of Sciences, Beijing100190, China
*
*Author for correspondence: Hongli Suo, E-mail: [email protected]
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Abstract

Advanced Ni8W/Ni12W/Ni8W alloy composite substrates used in YBCO-coated conductors with a strong cube texture and high yield strength have been fabricated, and a CeO2 buffer layer film was successfully deposited on the composite substrates. Through in situ tensile testing coupled with electron backscattered diffraction (EBSD) analysis, the stability of the cube texture of Ni8W/Ni12W/Ni8W alloy composite substrates has been investigated. The stress–strain curve shows that the yield strength (at 0.2% strain) of the composite substrates exceeds 250 Mpa. The orientation of grains and boundaries on the surface of the substrates was almost unchanged, while the strain exceeds 0.2%, which indicated that the composite substrates are adequate for depositing buffer layers and YBCO layers by the reel-to-reel process.

Type
Materials Science Applications
Copyright
Copyright © Microscopy Society of America 2020

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References

Bhattacharjee, PP, Ray, RK & Tsuji, N (2009). Cold rolling and recrystallization textures of a Ni–5 at.%W alloy. Acta Mater 57(7), 21662179.CrossRefGoogle Scholar
Buchheit, TE, Carroll, JD, Clark, BG & Boyce, BL (2015). Evaluating deformation-induced grain orientation change in a polycrystal during in situ tensile deformation using EBSD. Microsc Microanal 21(4), 969984.CrossRefGoogle Scholar
Chen, P, Mao, SC, Liu, Y, Wang, F, Zhang, YF, Zhang, Z & Han, XD (2013). In-situ EBSD study of the active slip systems and lattice rotation behavior of surface grains in aluminum alloy during tensile deformation. Mater Sci Eng A 580(10), 114124.CrossRefGoogle Scholar
Dimos, D, Chaudhari, P & Mannhart, J (1990). Superconducting transport properties of grain-boundaries in YBa2Cu3O7 bicrystals. Phys Rev B 41(7), 40384049.CrossRefGoogle ScholarPubMed
Eickemeyer, J, Hühne, R, Güth, A, Rodig, C, Gaitzsch, U, Freudenberger, J, Schultz, L & Holzapfel, B (2010). Textured Ni–9.0 at.%W substrate tapes for YBCO-coated conductors. Supercond Sci Tech 23(8), 085012.CrossRefGoogle Scholar
Eickemeyer, J, Hühne, R, Güth, A, Rodig, C, Klauß, H & Holzapfel, B (2008). Textured Ni–7.5 at.%W substrate tapes for YBCO-coated conductors. Supercond Sci Tech 21(10), 105012.CrossRefGoogle Scholar
Feldmann, DM, Larbalestier, DC, Verebelyi, DT, Zhang, W, Li, Q, Riley, GN, Feenstra, R, Goyal, A, Lee, DF, Paranthaman, M, Kroeger, DM & Christen, DK (2001). Inter- and intragrain transport measurements in YBa2Cu3O7-x deformation textured coated conductors. Appl Phys Lett 79(24), 39984000.CrossRefGoogle Scholar
Gaitzsch, U, Rodig, C, Damm, C & Schultz, L (2015). Elongated grains in Ni5W(Ag) RABiTS tapes. J Alloys Compd 623, 132135.CrossRefGoogle Scholar
Gao, M, Suo, H, Zhao, Y, Grivel, JC, Cheng, Y, Ma, L, Wang, R, Gao, P, Wang, J & Liu, M (2010). Characterization and properties of an advanced composite substrate for YBCO-coated conductors. Acta Mater 58(4), 12991308.CrossRefGoogle Scholar
Goyal, A, Norton, DP, Kroeger, DM, Christen, DK, Paranthaman, M, Specht, ED, Budai, JD, He, Q, Saffian, B, List, FA, Lee, DF, Hatfield, E, Martin, PM, Klabunde, CE, Mathis, J & Park, C (1997). Conductors with controlled grain boundaries: An approach to the next generation, high temperature superconducting wire. J Mater Res 12(11), 29242940.CrossRefGoogle Scholar
Heinig, NF, Redwing, RD, Nordman, JE & Larbalestier, DC (1999). Strong to weak coupling transition in low misorientation angle thin film YBa2Cu3O7-x bicrystals. Phys Rev B 60(2), 14091417.CrossRefGoogle Scholar
Iijima, Y & Tanabe, N (1992). In-plane aligned YBa2Cu3O7-x thin films deposited on polycrystalline. Appl Phys Lett. 60(6), 769771.CrossRefGoogle Scholar
Jiang, K, Nakano, H, Oue, S, Morikawa, T, Li, Z & Tian, W (2018). Interrupted in situ EBSD study of texture evolution and mechanism of surface grains in electroformed Ni after annealing with an initially duplex 〈100〉+〈111〉 fiber texture during uniaxial tensile deformation. Mater Charact.CrossRefGoogle Scholar
Lao, M, Pahlke, P, Sieger, M, Falter, M, Backer, M, Hanisch, J, Huhne, R & Eisterer, M (2019). Manifestation of granularity in the transport current of coated conductors. Supercond Sci Tech 32(5). doi: 10.1088/1361-6668/ab0677.CrossRefGoogle Scholar
Liu, J, Liu, W, Tang, G & Zhu, R (2014). Fabrication of textured Ni–9.3 at.%W substrate by electropulsing intermediate annealing method. Phys C 497(2), 119122.CrossRefGoogle Scholar
Liu, M, Suo, HL, Zhao, Y, He, D, Zhang, YX, Ma, L, Fan, RF & Zhou, ML (2007). A novel technique for developing composite substrates used in YBCO coated conductors. Scripta Mater 56(2), 129131.CrossRefGoogle Scholar
Ma, L, Suo, HL, Zhao, Y, Wulff, AC, Liang, YR & Grivel, JC (2015). Study on fabrication of Ni–5 at.%W tapes for coated conductors from cylinder ingots. IEEE Trans Appl Supercond 25(3), 15.Google Scholar
Norton, DP (1996). Epitaxial YBa2Cu3O7 on biaxially textured nickel (001): An approach to superconducting tapes with high critical current density. Science 274(5288), 755757.CrossRefGoogle Scholar
Redwing, RD, Hinaus, BM, Rzchowski, MS, Heinig, NF, Davidson, BA & Nordman, JE (1999). Observation of strong to Josephson-coupled crossover in 10 degrees YBa2Cu3Ox bicrystal junctions. Appl Phys Lett 75(20), 31713173.CrossRefGoogle Scholar
Sarma, VS, Boer, BD, Eickemeyer, J & Holzapfel, B (2003 a). On the development of high strength and bi-axially textured Ni–3%W/Ni–10%Cr–1.5%Al composite substrate for coated conductor application. Scripta Mater 48(8), 11671171.CrossRefGoogle Scholar
Sarma, VS, Eickemeyer, J, Singh, A, Schultz, L & Holzapfel, B (2003 b). Development of high strength and strongly cube textured Ni–4.5%W/Ni–15%Cr composite substrate for coated conductor application. Acta Mater 51(16), 49194927.CrossRefGoogle Scholar
Suo, HL, Zhao, Y, Liu, M & Ma, L (2007). Preparation of cube textured Ni5W/Ni9W composite substrate for YBCO coated conductors. IEEE Trans Appl Supercond 17(2), 34203423.Google Scholar
Tian, H, Wang, Y, Ma, L, Liu, M & Suo, H (2016). Evolutions of the texture and microstructure of a heavily cold-rolled Ni9W alloy during recrystallization. J Mater Res 31(16), 24382444.CrossRefGoogle Scholar
Yu, D, Suo, HL, Liu, J, Ma, L, Cui, J, Ji, YT, Kausar, S, Liu, M & Wang, Y (2018). Intermediate annealing and strong cube texture of Ni8W/Ni12W/Ni8W composite substrates. J Mater Sci 53(21), 1529815307.CrossRefGoogle Scholar
Zhao, Y, Chu, J, Qureishy, T, Wu, W, Zhang, Z, Mikheenko, P, Johansen, TH & Grivel, JC (2018). Structural and superconducting characteristics of YBa2Cu3O7 films grown by fluorine-free metal-organic deposition route. Acta Mater 144, 844852.CrossRefGoogle Scholar
Zhao, Y, Suo, HL, Liu, M, He, D, Zhang, YX, Ma, L & Zhou, ML (2007). Highly reinforced and cube textured Ni alloy composite substrates by a hybrid route. Acta Mater 55(8), 26092614.CrossRefGoogle Scholar
Zhao, Y, Suo, HL, Zhu, YH, Grivel, JC, Gao, M, Ma, L, Fan, RF, Liu, M, Ji, Y & Zhou, ML (2009). Study on the formation of cubic texture in Ni–7 at.%W alloy substrates by powder metallurgy routes. Acta Mater 57(3), 773781.CrossRefGoogle Scholar
Zhao, Y, Suo, HL, Zhu, YH, Liu, M, He, D, Ye, S, Ma, L, Fan, RF, Ji, Y & Zhou, ML (2008). Highly reinforced, low magnetic and biaxially textured Ni–7 at.%W/Ni–12 at.%W multi-layer substrates developed for coated conductors. Supercond Sci Tech 21(7), 72.CrossRefGoogle Scholar