Multiple Melting Temperatures in Glass-Forming Melts
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- Osamu Mishima & H. Eugene Stanley, 1998. "The relationship between liquid, supercooled and glassy water," Nature, Nature, vol. 396(6709), pages 329-335, November.
- Wei Xu & Magdalena T. Sandor & Yao Yu & Hai-Bo Ke & Hua-Ping Zhang & Mao-Zhi Li & Wei-Hua Wang & Lin Liu & Yue Wu, 2015. "Evidence of liquid–liquid transition in glass-forming La50Al35Ni15 melt above liquidus temperature," Nature Communications, Nature, vol. 6(1), pages 1-9, November.
- Kivelson, Daniel & Kivelson, Steven A. & Zhao, Xiaolin & Nussinov, Zohar & Tarjus, Gilles, 1995. "A thermodynamic theory of supercooled liquids," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 219(1), pages 27-38.
- S. Lan & Y. Ren & X. Y. Wei & B. Wang & E. P. Gilbert & T. Shibayama & S. Watanabe & M. Ohnuma & X. -L. Wang, 2017. "Hidden amorphous phase and reentrant supercooled liquid in Pd-Ni-P metallic glasses," Nature Communications, Nature, vol. 8(1), pages 1-8, April.
- Pablo G. Debenedetti & Frank H. Stillinger, 2001. "Supercooled liquids and the glass transition," Nature, Nature, vol. 410(6825), pages 259-267, March.
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Keywords
metallic glasses; melting temperatures; liquid–liquid transitions; chemical bonds; vitrification; crystallization; first order transitions;All these keywords.
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