Acta Metallurgica Sinica (English Letters) ›› 2022, Vol. 35 ›› Issue (5): 812-824.DOI: 10.1007/s40195-021-01292-4
Previous Articles Next Articles
Sijie Qin1,2, Xiongcheng Xu4, Yanjin Lu1,2,3(), Liu Li1,3, Tingting Huang1, Jinxin Lin1,2,3(
)
Received:
2021-04-24
Revised:
2021-05-18
Accepted:
2021-06-08
Online:
2022-05-10
Published:
2021-07-30
Contact:
Yanjin Lu,Jinxin Lin
About author:
Jinxin Lin, franklin@fjirsm.ac.cnSijie Qin, Xiongcheng Xu, Yanjin Lu, Liu Li, Tingting Huang, Jinxin Lin. Doping Gd3+ Ion in PDA-PHBV Coating on Ti6Al4V Alloy for Enhancing Corrosion Resistance and Proliferation of Human Gingival Fibroblasts and Human Umbilical Vein Endothelial Cells[J]. Acta Metallurgica Sinica (English Letters), 2022, 35(5): 812-824.
Add to citation manager EndNote|Ris|BibTeX
Ti | Al | V | Fe | O | C | N | H |
---|---|---|---|---|---|---|---|
Balance | 6.010 | 3.970 | 0.020 | < 0.030 | < 0.010 | < 0.0010 | < 0.001 |
Table 1 Ti6Al4V chemical composition (wt%)
Ti | Al | V | Fe | O | C | N | H |
---|---|---|---|---|---|---|---|
Balance | 6.010 | 3.970 | 0.020 | < 0.030 | < 0.010 | < 0.0010 | < 0.001 |
Chemical compound | Abbreviation | Quality |
---|---|---|
Sodium chloride | NaCl | 8.035 g |
Sodium bicarbonate | NaHCO3 | 0.3550 g |
Potassium chloride | KCl | 0.2250 g |
Potassium hydrogen phosphate trihydrate | KHPO3·3H2O | 0.2310 g |
Magnesium chloride hexahydrate | MgCl·6H2O | 0.3110 g |
hydrochloric acid (mol/L) | HCl (1 mol/L) | 39.00 mL |
Calcium chloride | CaCl2 | 0.2920 g |
Sodium sulfate | Na2SO4 | 0.07200 g |
Tris (hydroxymethyl) aminomethane | (CHOH)3CNH2 | 6.118 g |
hydrochloric acid (1 mol/L) | HCl (1 mol/L) | 0-5 mL |
Table 2 Composition of 1-L SBF solution
Chemical compound | Abbreviation | Quality |
---|---|---|
Sodium chloride | NaCl | 8.035 g |
Sodium bicarbonate | NaHCO3 | 0.3550 g |
Potassium chloride | KCl | 0.2250 g |
Potassium hydrogen phosphate trihydrate | KHPO3·3H2O | 0.2310 g |
Magnesium chloride hexahydrate | MgCl·6H2O | 0.3110 g |
hydrochloric acid (mol/L) | HCl (1 mol/L) | 39.00 mL |
Calcium chloride | CaCl2 | 0.2920 g |
Sodium sulfate | Na2SO4 | 0.07200 g |
Tris (hydroxymethyl) aminomethane | (CHOH)3CNH2 | 6.118 g |
hydrochloric acid (1 mol/L) | HCl (1 mol/L) | 0-5 mL |
Fig. 2 a-e SEM images and surface roughness curves, f water contact angles of a Ti6Al4V, b PDA-PHBV, c PDA-PHBV@1Gd, d PDA-PHBV@5Gd, and e PDA-PHBV@10Gd
Samples | Ecorr (mV) | Icorr (nA cm-2) | Ratecorr (mpy) |
---|---|---|---|
Ti6Al4V | 731.0 ± 5.312 | 377.8 ± 3.213 | (172.6 ± 2.601) × 10-3 |
PDA-PHBV | 296.1 ± 4.056 | 35.50 ± 4.562 | (16.65 ± 2.031) × 10-3 |
PDA-PHBV@1Gd | 196.2 ± 4.321 | 32.60 ± 4.026 | (14.88 ± 2.956) × 10-3 |
PDA-PHBV@5Gd | 545.2 ± 4.956 | 30.51 ± 4.701 | (14.00 ± 3.052) × 10-3 |
PDA-PHBV@10Gd | 766.3 ± 5.012 | 23.42 ± 3.978 | (10.51 ± 2.986) × 10-3 |
Table 3 Corrosion parameters obtained by fitting POTDNY
Samples | Ecorr (mV) | Icorr (nA cm-2) | Ratecorr (mpy) |
---|---|---|---|
Ti6Al4V | 731.0 ± 5.312 | 377.8 ± 3.213 | (172.6 ± 2.601) × 10-3 |
PDA-PHBV | 296.1 ± 4.056 | 35.50 ± 4.562 | (16.65 ± 2.031) × 10-3 |
PDA-PHBV@1Gd | 196.2 ± 4.321 | 32.60 ± 4.026 | (14.88 ± 2.956) × 10-3 |
PDA-PHBV@5Gd | 545.2 ± 4.956 | 30.51 ± 4.701 | (14.00 ± 3.052) × 10-3 |
PDA-PHBV@10Gd | 766.3 ± 5.012 | 23.42 ± 3.978 | (10.51 ± 2.986) × 10-3 |
Samples | R1 (Ω cm2) | R2 (MΩ cm2) | ZCPE (μF cm-2) | n | χ2 |
---|---|---|---|---|---|
Ti6Al4V | 33.90 ± 2.350 | 0.207 ± 0.014 | 41.52 ± 0.505 | 0.902 ± 0.003 | 1.201 × 10-4 |
PDA-PHBV | 25.28 ± 1.905 | 0.451 ± 0.020 | 82.67 ± 0.804 | 0.912 ± 0.006 | 1.211 × 10-4 |
PDA-PHBV@1Gd | 37.10 ± 2.032 | 0.631 ± 0.014 | 78.02 ± 0.780 | 0.920 ± 0.006 | 1.024 × 10-4 |
PDA-PHBV@5Gd | 47.56 ± 2.102 | 0.788 ± 0.016 | 85.32 ± 1.353 | 0.924 ± 0.006 | 1.204 × 10-4 |
PDA-PHBV@10Gd | 36.70 ± 1.956 | 0.995 ± 0.020 | 79.74 ± 1.078 | 0.923 ± 0.007 | 1.101 × 10-4 |
Table 4 Parameters obtained from equivalent circuits
Samples | R1 (Ω cm2) | R2 (MΩ cm2) | ZCPE (μF cm-2) | n | χ2 |
---|---|---|---|---|---|
Ti6Al4V | 33.90 ± 2.350 | 0.207 ± 0.014 | 41.52 ± 0.505 | 0.902 ± 0.003 | 1.201 × 10-4 |
PDA-PHBV | 25.28 ± 1.905 | 0.451 ± 0.020 | 82.67 ± 0.804 | 0.912 ± 0.006 | 1.211 × 10-4 |
PDA-PHBV@1Gd | 37.10 ± 2.032 | 0.631 ± 0.014 | 78.02 ± 0.780 | 0.920 ± 0.006 | 1.024 × 10-4 |
PDA-PHBV@5Gd | 47.56 ± 2.102 | 0.788 ± 0.016 | 85.32 ± 1.353 | 0.924 ± 0.006 | 1.204 × 10-4 |
PDA-PHBV@10Gd | 36.70 ± 1.956 | 0.995 ± 0.020 | 79.74 ± 1.078 | 0.923 ± 0.007 | 1.101 × 10-4 |
Fig. 7 a-e, g-k Fluorescence microscope images, f, l CCK-8 test results of a-f HGFs and g-l HUVECs cultured on different samples for a day (*: p?>?0.05; **: p?<?0.05)
[1] |
M.M. Furst, G.E. Salvi, N.P. Lang, G.R. Persson, Clin. Oral Implan. Res. 18, 501 (2007)
DOI URL |
[2] |
X. Wang, T. Lu, J. Wen, L. Xu, D. Zeng, Q. Wu, L. Cao, S. Lin, X. Liu, X. Jiang, Biomaterials 83, 207 (2016)
DOI URL |
[3] |
D. Campoccia, L. Montanaro, C.R. Arciola, Biomaterials 34, 8533 (2013)
DOI PMID |
[4] |
D.W. Hamilton, B. Chehroudi, D.M. Brunette, Biomaterials 28, 2281 (2007)
PMID |
[5] |
T.P. Kunzler, T. Drobek, M. Schuler, N.D. Spencer, Biomaterials 28, 2175 (2007)
PMID |
[6] |
M. Liu, J. Zhou, Y. Yang, M. Zheng, J. Yang, J. Tan, Colloid Surface B 136, 74 (2015)
DOI URL |
[7] |
R. Xu, X. Hu, X. Yu, S. Wan, F. Wu, J. Ouyang, F. Deng Int. J. Nanomed. 13, 5045 (2018)
DOI URL |
[8] |
J. Takebe, K. Miyata, S. Miura, S. Ito, Mat. Sci. Eng. C Mater. 42, 273 (2014)
DOI URL |
[9] |
S. Miura, J. Takebe, J. Prosthodont. Res. 56, 178 (2012)
DOI URL |
[10] |
N. Esfahanizadeh, S. Motalebi, N. Daneshparvar, N. Akhoundi, S. Bonakdar, Laser Med. Sci. 31, 863 (2016)
DOI PMID |
[11] | L. Wang, Q. Luo, X. Zhang, J. Qiu, S. Qian, X. Liu, Bioact. Mater. 6, 64 (2021) |
[12] |
S. Ferraris, F. Truffa Giachet, M. Miola, E. Bertone, A. Varesano, C. Vineis, A. Cochis, R. Sorrentino, L. Rimondini, S. Spriano, Mater. Sci. Eng. C Mater. 76, 1 (2017)
DOI URL |
[13] |
P.B. Milan, S. Khamseh, P. Zarrintaj, B. Ramezanzadeh, M. Badawi, S. Morisset, H. Vahabi, M.R. Saeb, M. Mozafari, Heliyon 6, e03798 (2020)
DOI URL |
[14] |
Y. Zhu, D. Liu, X. Wang, Y. He, W. Luan, F. Qi, J. Ding, J. Mater. Chem. B 7, 2019 (2019)
DOI PMID |
[15] | V.P. Koidou, P.P. Argyris, E.P. Skoe, J. Mota Siqueira, X. Chen, L. Zhang, J.E. Hinrichs, M. Costalonga, C. Aparicio, Biomater. Sci. UK 6, 1936 (2018) |
[16] |
V.V. Sevostianova, L.V. Antonova, A.V. Mironov, A.E. Yuzhalin, V.N. Silnikov, T.V. Glushkova, T.S. Godovikova, E.O. Krivkina, E. Bolbasov, T.N. Akentyeva, M.Y. Khanova, V.G. Matveeva, E.A. Velikanova, R.S. Tarasov, L.S. Barbarash, ACS Omega 5, 21700 (2020)
DOI PMID |
[17] |
M. Kouhi, M. Fathi, M.P. Prabhakaran, M. Shamanian, S. Ramakrishna, Appl. Surf. Sci. 457, 616 (2018)
DOI URL |
[18] | G. Mutlu, S. Calamak, K. Ulubayram, E. Guven, J. Drug. Deliv. Sci. Tec. 43, 185 (2018) |
[19] |
L. Kaniuk, Z.J. Krysiak, S. Metwally, U. Stachewicz, Mater. Sci. Eng. C Mater. 110, 110668 (2020)
DOI URL |
[20] |
M.L. Tebaldi, A.L.C. Maia, F. Poletto, F.V. de Andrade, D.C.F. Soares, J. Drug. Deliv. Sci. Tec. 51, 115 (2019)
DOI |
[21] |
N. Sultana, M. Wang, Biofabrication 4, 015003 (2012)
DOI URL |
[22] | C. Del Gaudio, L. Fioravanzo, M. Folin, F. Marchi, E. Ercolani, A. Bianco, Mater. Res. B 100, 1883 (2012) |
[23] |
Z.C. Xing, W.P. Chae, J.Y. Baek, M.J. Choi, Y. Jung, I.K. Kang, Biomacromol 11, 1248 (2010)
DOI URL |
[24] |
O.V. El’kin, A.V. Kovalevskii Russ. J. Electrochem. 47, 865 (2011)
DOI URL |
[25] |
C. Guo, L. Sun, H. Cai, Z. Duan, S. Zhang, Q. Gong, K. Luo, Z. Gu, ACS Appl. Mater. Interface 9, 23508 (2017)
DOI URL |
[26] |
P. Wang, L. Hao, Z. Wang, Y. Wang, M. Guo, P. Zhang, ACS Appl. Mater. Interface 12, 49464 (2020)
DOI URL |
[27] |
D. Bian, J. Deng, N. Li, X. Chu, Y. Liu, W. Li, H. Cai, P. Xiu, Y. Zhang, Z. Guan, Y. Zheng, Y. Kou, B. Jiang, R. Chen, ACS Appl. Mater. Interface 10, 4394 (2018)
DOI URL |
[28] |
W.A. High, R.A. Ayers, J. Chandler, G. Zito, S.E. Cowper, J. Am. Acad. Dermatol. 56, 21 (2007)
DOI URL |
[29] |
D.J. Todd, A. Kagan, L.B. Chibnik, J. Kay, Arthritis. Rheumatol. 56, 3433 (2007)
DOI URL |
[30] |
C. Chen, G. Xing, J. Wang, Y. Zhao, B. Li, J. Tang, G. Jia, T. Wang, J. Sun, L. Xing, H. Yuan, Y. Gao, H. Meng, Z. Chen, F. Zhao, Z. Chai, X. Fang, Nano Lett. 5, 2050 (2005)
DOI URL |
[31] | T.J. Haley, K. Raymond, N. Komesu, H.C. Upham, Brit. J. Pharmacol. 17, 526 (1961) |
[32] |
Y. Ozawa, S. Hayashi, Y. Hamasaki, A. Hatamochi, Arch. Dermatol. Res. 308, 695 (2016)
DOI URL |
[33] | E. Turker, N. Demircak, A. Arslan-Yildiz, Biomater. Sci. UK 6, 1745 (2018) |
[34] | M. Feng, X. Yang, J. Pharm. Sci. US 23, 772 (2014) |
[35] |
L. Shen, A. Yang, P. Yao, X. Sun, C. Chen, C. Mo, L. Shi, Y. Chen, Q. Liu, Biometals 27, 753 (2014)
DOI URL |
[36] | C.H. Kim, Y.S. Cho, Y.S. Chun, J.W. Park, M.S. Kim, Circ. Res. 90, e25 (2002) |
[37] |
J.H. Ryu, P.B. Messersmith, H. Lee, ACS Appl. Mater. Interface 10, 7523 (2018)
DOI URL |
[38] |
Q. Lyu, N. Hsueh, C.L.L. Chai, ACS Biomater. Sci. Eng. 5, 2708 (2019)
DOI URL |
[39] | P. Zhang, X. Wang, Z. Lin, H. Lin, Z. Zhang, W. Li, X. Yang, J. Cui, Nanomater. Basel 7, 343 (2017) |
[40] |
M. González-Torres, M. Olayo, L. Gómez, J. Morales, R. Olayo, R. Ramírez, F. Flores, M. Mejía-Cuero, G. Cruz, Polym. Bull. 77, 375 (2020)
DOI URL |
[41] |
Y. Liao, B. Cao, W.-C. Wang, L. Zhang, D. Wu, R. Jin, Appl. Surf. Sci. 255, 8207 (2009)
DOI URL |
[42] |
M. Mitra, M. Mahapatra, A. Dutta, J.S.D. Roy, M. Karmakar, M. Deb, H. Mondal, P.K. Chattopadhyay, A. Bandyopadhyay, N.R. Singha, J. Hazard. Mater. 369, 746 (2019)
DOI URL |
[43] | Y. Huang, L. Li, D. Zhang, L. Gan, P. Zhao, Y. Zhang, Q. Zhang, M. Hua, C. Jia, J. Magn. Reson. Imaging 68, 113 (2020) |
[44] | A. Dougherty, C. Harper, F. Iskandar, I. Arif, G. Dougherty, J. Sci. Adv. Mater. Dev. 3, 419 (2018) |
[45] |
T.P. Cheng, J.T. Lee, W.T. Tsai, Electrochim. Acta 36, 2069 (1991)
DOI URL |
[46] |
J. Pan, D. Thierry, C. Leygraf, Electrochim. Acta 41, 1143 (1996)
DOI URL |
[47] |
A. Robin, J.P. Meirelis, J. Appl. Electrochem. 37, 511 (2007)
DOI URL |
[48] |
A. Kocijan, D.K. Merl, M. Jenko, Corr. Sci. 53, 776 (2011)
DOI URL |
[49] |
Y. Lu, S. Guo, Y. Yang, Y. Liu, Y. Zhou, S. Wu, C. Zhao, J. Lin, J. Alloys Compd. 730, 552 (2018)
DOI URL |
[50] |
D.Q. Martins, W.R. Osório, M.E.P. Souza, R. Caram, A. Garcia, Electrochim. Acta 53, 2809 (2008)
DOI URL |
[51] |
S. Amin Yavari, J. Stok, Y.C. Chai, R. Wauthle, Z. Tahmasebi Birgani, P. Habibovic, M. Mulier, J. Schrooten, H. Weinans, A.A. Zadpoor, Biomaterials 35, 6172 (2014)
DOI PMID |
[52] |
M.A. Siddiqui, I. Ullah, L. Hui, S. Zhang, Y. Ke, J. Mater. Sci. Technol. 80, 117 (2021)
DOI URL |
[53] |
M.A. Siddiqui, L. Ren, D.D. Macdonald, K. Yang, Electrochim. Acta 386, 138466 (2021)
DOI URL |
[54] |
K. Arkusz, M. Nycz, A.E. Paradowska, Materials 13, 176 (2020)
DOI URL |
[55] |
M.A. De la Garza-Ramos, F.H. Estupinan-Lopez, C. Gaona-Tiburcio, L.G. Beltran-Novelo, P. Zambrano-Robledo, J. Cabral-Miramontes, F. Almeraya-Calderon, Materials 13, 4185 (2020)
DOI URL |
[56] |
K. Gulati, S. Ramakrishnan, M. Aw, G. Atkins, D. Findlay, D. Losic, Acta Biomater. 8, 449 (2012)
DOI PMID |
[57] | A. Radtke, A. Topolski, T. Jedrzejewski, W. Kozak, B. Sadowska, M. Wieckowska-Szakiel, M. Szubka, E. Talik, L. Pleth Nielsen, P. Piszczek, Nanomater. Basel 7, 197 (2017) |
[58] | M.A. Pacha-Olivenza, R. Tejero, M.C. Fernandez-Calderon, E. Anitua, M. Troya, M.L. Gonzalez-Martin, Biomed. Res. Int. 2019, 1 (2019) |
[59] |
M. Ehlert, A. Radtke, T. Jedrzejewski, K. Roszek, M. Bartmanski, P. Piszczek, Materials 13, 1574 (2020)
DOI URL |
[60] |
S. Furrr, K. Scherer Hofmeier, L. Grize, A.J. Bircher, Contact Dermat. 79, 91 (2018)
DOI URL |
[61] | D. Cadosch, E. Chan, O.P. Gautschi, L. Filgueira, J. Biomed. Mater. Res. 91, 1252 (2009) |
[1] | Minmin Li, Zhe Qin, Yan Yang, Xiaoming Xiong, Gang Zhou, Xiaofei Cui, Bin Jiang, Xiaodong Peng, Fusheng Pan. Microstructure and Corrosion Properties of Duplex-Structured Extruded Mg-6Li-4Zn-xMn Alloys [J]. Acta Metallurgica Sinica (English Letters), 2022, 35(5): 867-878. |
[2] | Sharafadeen Kunle Kolawole, Ling Ren, Muhammad Ali Siddiqui, Ihsan Ullah, Hai Wang, Shuyuan Zhang, Ji Zhang, Ke Yang. Optimized Mechanical Properties, Corrosion Resistance and Bactericidal Ability of Ti-15Zr-xCu Biomedical Alloys During Aging Treatment [J]. Acta Metallurgica Sinica (English Letters), 2022, 35(2): 304-316. |
[3] | Chongfeng Sun, Shengqi Xi, Xiaofeng Dang, Jianping Li, Yongchun Guo, Zhong Yang, Yaping Bai. Formation of Fe-19 wt%Cr-9 wt%Ni Nanocrystalline Alloy with Excellent Corrosion Resistance: Phase Transition and Microstructure [J]. Acta Metallurgica Sinica (English Letters), 2021, 34(6): 825-833. |
[4] | Zheng-Zheng Yin, Wei Zhao, Jing Xu, Rong-Chang Zeng, Feng-Qin Wang, Zhen-Lin Wang. Corrosion Resistance of Superhydrophobic Mg(OH)2/Calcium Myristate Composite Coating on Magnesium Alloy AZ31 [J]. Acta Metallurgica Sinica (English Letters), 2021, 34(12): 1618-1634. |
[5] | Ben-Qi Xu, Hui Zhang, Dong Ma, Qun-Shuang Ma, Li-Zhai Pei. Ageing Hardening Mechanism and Corrosion Resistance in the Fe65Cr13Cu3(CoMnMoNiAlTi)19 Medium-Entropy Stainless Alloy [J]. Acta Metallurgica Sinica (English Letters), 2021, 34(11): 1601-1608. |
[6] | Mingming Zhang, Yipeng Feng, Yahui Wang, Yunsong Niu, Li Xin, Yongfeng Li, Jianxiu Su, Shenglong Zhu, Fuhui Wang. Corrosion Behaviors of Nitride Coatings on Titanium Alloy in NaCl-Induced Hot Corrosion [J]. Acta Metallurgica Sinica (English Letters), 2021, 34(10): 1434-1446. |
[7] | Dong-Dong Gu, Jian Peng, Jia-Wen Wang, Zheng-Tao Liu, Fu-Sheng Pan. Effect of Mn Modification on the Corrosion Susceptibility of Mg-Mn Alloys by Magnesium Scrap [J]. Acta Metallurgica Sinica (English Letters), 2021, 34(1): 1-11. |
[8] | Zheng-Zheng Yin, Zhao-Qi Zhang, Xiu-Juan Tian, Zhen-Lin Wang, Rong-Chang Zeng. Corrosion Resistance and Durability of Superhydrophobic Coating on AZ31 Mg Alloy via One-Step Electrodeposition [J]. Acta Metallurgica Sinica (English Letters), 2021, 34(1): 25-38. |
[9] | Yuanyuan Liu, Zhongmin Lang, Jinlong Cui, Shengli An. Performance of Nb0.8Zr0.2 Layer-Modified AISI430 Stainless Steel as Bipolar Plates for Direct Formic Acid Fuel Cells [J]. Acta Metallurgica Sinica (English Letters), 2021, 34(1): 77-84. |
[10] | Xigang Yang, Yun Zhou, Ruihua Zhu, Shengqi Xi, Cheng He, Hongjing Wu, Yuan Gao. A Novel, Amorphous, Non-equiatomic FeCrAlCuNiSi High-Entropy Alloy with Exceptional Corrosion Resistance and Mechanical Properties [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(8): 1057-1063. |
[11] | P. F. Zhou, D. H. Xiao, T. C. Yuan. Microstructure, Mechanical and Corrosion Properties of AlCoCrFeNi High-Entropy Alloy Prepared by Spark Plasma Sintering [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(7): 937-946. |
[12] | Haifei Zhou, Zhouhai Qian, Mengcheng Zhou, Xuebing Liu, Yong Li, Xinfang Zhang. Synergistic Balance of Strength and Corrosion Resistance in Al-Mg-Er Alloys [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(5): 659-670. |
[13] | Li-Mei Liu, Yu-Xiang Lai, Chun-Hui Liu, Jiang-Hua Chen. Optimized Combinatorial Properties of an AlMgSi(Cu) Alloy Achieved by a Mechanical-Thermal Combinatorial Process [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(5): 751-758. |
[14] | Jing-Jing Dong, Lin Fan, Hai-Bing Zhang, Li-Kun Xu, Li-Li Xue. Electrochemical Performance of Passive Film Formed on Ti-Al-Nb-Zr Alloy in Simulated Deep Sea Environments [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(4): 595-604. |
[15] | Hao-Yi Niu, Fang-Fang Cao, Kun-Kun Deng, Kai-Bo Nie, Jin-Wen Kang, Hong-Wei Wang. Microstructure and Corrosion Behavior of the As-Extruded Mg-4Zn-2Gd-0.5Ca Alloy [J]. Acta Metallurgica Sinica (English Letters), 2020, 33(3): 362-374. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||