Page 154 - Read Online
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Zhang et al. J. Mater. Inf. 2026, 6, 11                                           Page 15 of 17





               15.  Wei, M.; Xu, J.; Zhu, J.; et al. Influence of size disorder parameter on the thermophysical properties of rare‐earth‐zirconate medium‐
                  entropy ceramics. J. Am. Ceram. Soc. 2023, 106, 2037-48. DOI
               16.  Wan, C.; Qu, Z.; Du, A.; Pan, W. Order–disorder transition and unconventional thermal conductivities of the (Sm 1-x Yb x ) 2 Zr 2 O 7  series. J.
                  Am. Ceram. Soc. 2011, 94, 592-6. DOI
               17.  Ren, S.; Zong, H. X.; Tao, X. F.; et al. Boson-peak-like anomaly caused by transverse phonon softening in strain glass. Nat. Commun.
                  2021, 12, 5755. DOI PubMed PMC
               18.  Wright, A. J.; Wang, Q.; Hu, C.; Yeh, Y.; Chen, R.; Luo, J. Single-phase duodenary high-entropy fluorite/pyrochlore oxides with an
                  order-disorder transition. Acta. Mater. 2021, 211, 116858. DOI
               19.  Teng, Z.; Tan, Y.; Zeng, S.; et al. Preparation and phase evolution of high-entropy oxides A 2 B 2 O 7  with multiple elements at A and B
                  sites. J. Eur. Ceram. Soc. 2021, 41, 3614-20. DOI
               20.  Ren, G.; Zhang, H.; Che, J.; et al. Oxygen ion diffusion in RE 3 TaO 7 : why long-range migration of O  is prohibited in the
                                                                                           2-
                  defective-fluorite structure? Acta. Mater. 2024, 281, 120362. DOI
               21.  Wright, A. J.; Wang, Q.; Ko, S.; Chung, K. M.; Chen, R.; Luo, J. Size disorder as a descriptor for predicting reduced thermal
                  conductivity in medium- and high-entropy pyrochlore oxides. Scr. Mater. 2020, 181, 76-81. DOI
               22.  Toher, C.; Oses, C.; Esters, M.; et al. High-entropy ceramics: propelling applications through disorder. MRS. Bull. 2022, 47, 194-202.
                  DOI
               23.  Han, Y.; Liu, X.; Zhang, Q.; et al. Ultra-dense dislocations stabilized in high entropy oxide ceramics. Nat. Commun. 2022, 13, 2871. DOI
                  PubMed PMC
               24.  Yang, Y.; Song, Z.; Lu, G.; et al. Intrinsic toughening and stable crack propagation in hexagonal boron nitride. Nature 2021, 594, 57-61.
                  DOI PubMed
               25.  Lee, S.; Esfarjani, K.; Luo, T.; Zhou, J.; Tian, Z.; Chen, G. Resonant bonding leads to low lattice thermal conductivity. Nat. Commun.
                  2014, 5, 3525. DOI PubMed
               26.  Singh, P.; Vela, B.; Ouyang, G.; et al. A ductility metric for refractory-based multi-principal-element alloys. Acta. Mater. 2023, 257,
                  119104. DOI
               27.  Zhang, Y.; Ren, K.; Wang, W. Y.; et al. Discovering the ultralow thermal conductive A 2 B 2 O 7 -type high-entropy oxides through the
                  hybrid knowledge-assisted data-driven machine learning. J. Mater. Sci. Technol. 2024, 168, 131-42. DOI
               28.  Gu, H.; Rohmer, J.; Jetter, J.; et al. Exploding and weeping ceramics. Nature 2021, 599, 416-20. DOI PubMed
               29.  Braun, J. L.; Rost, C. M.; Lim, M.; et al. Charge-induced disorder controls the thermal conductivity of entropy-stabilized oxides. Adv.
                  Mater. 2018, 30, e1805004. DOI PubMed PMC
               30.  Sarkar, A.; Wang, Q.; Schiele, A.; et al. High-entropy oxides: fundamental aspects and electrochemical properties. Adv. Mater. 2019, 31,
                  e1806236. DOI PubMed
               31.  He, J.; Xia, Y.; Lin, W.; et al. Accelerated discovery and design of ultralow lattice thermal conductivity materials using chemical
                  bonding principles. Adv. Funct. Mater. 2022, 32, 2108532. DOI
               32.  Ritchie, R. O. The conflicts between strength and toughness. Nat. Mater. 2011, 10, 817-22. DOI PubMed
               33.  Sun, C.; Huang, Y.; Shen, Q.; et al. Embedding two-dimensional graphene array in ceramic matrix. Sci. Adv. 2020, 6, eabb1338. DOI
                  PubMed PMC
               34.  Ritchie, R. O. Toughening materials: enhancing resistance to fracture. Philos. Trans. A. Math. Phys. Eng. Sci. 2021, 379, 20200437. DOI
                  PubMed
               35.  Porz, L.; Klomp, A. J.; Fang, X.; et al. Dislocation-toughened ceramics. Mater. Horiz. 2021, 8, 1528-37. DOI PubMed
               36.  Han, J.; Kim, I.; Cho, N.; et al. Toward accurate machine learning-driven prediction of polymeric composites properties based on
                  experimental data. MGE. Adv. 2025, 3, e70027. DOI
               37.  Wang, W. Y.; Zhang, S.; Li, G.; et al. Artificial intelligence enabled smart design and manufacturing of advanced materials: the endless
                  frontier in AI  era. MGE. Adv. 2024, 2, e56. DOI
                           +
               38.  Shang, Y.; Xiong, Z.; An, K.; Hauch, J. A.; Brabec, C. J.; Li, N. Materials genome engineering accelerates the research and development
                  of organic and perovskite photovoltaics. MGE. Adv. 2024, 2, e28. DOI
               39.  Wang, W. Y.; Yin, J.; Chai, Z.; et al. Big data-assisted digital twins for the smart design and manufacturing of advanced materials: from
                  atoms to products. J. Mater. Inf. 2022, 2, 1. DOI
               40.  Gao, X.; Wang, W. Y.; Chen, X.; et al. ProME: an integrated computational platform for material properties at extremes and its
                  application in multicomponent alloy design. MGE. Adv. 2025, 3, e70029. DOI
               41.  Divilov, S.; Eckert, H.; Hicks, D.; et al. Disordered enthalpy-entropy descriptor for high-entropy ceramics discovery. Nature 2024, 625,
                  66-73. DOI PubMed PMC
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