High temperature Raman spectra of sodium disilicate crystal, glass and its liquid

Raman spectra of Na 2Si 2O 5 in solid and liquid states from room temperature to 1773 K were measured to observe phase transition and analyze the temperature-dependent variations of the structure units, five kinds of SiO 4 tetrahedrons, which are defined as Q 4, Q 3, Q 2, Q 1 and Q 0 species corresp...

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Published inJournal of non-crystalline solids Vol. 282; no. 1; pp. 125 - 131
Main Authors You, Jinglin, Jiang, Guochang, Xu, Kuangdi
Format Journal Article Conference Proceeding
LanguageEnglish
Published Amsterdam Elsevier B.V 01.04.2001
Elsevier
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Abstract Raman spectra of Na 2Si 2O 5 in solid and liquid states from room temperature to 1773 K were measured to observe phase transition and analyze the temperature-dependent variations of the structure units, five kinds of SiO 4 tetrahedrons, which are defined as Q 4, Q 3, Q 2, Q 1 and Q 0 species corresponding to the number of bridging oxygen binding to each Si. A pulsed copper vapor laser was used as laser source coupled with time resolved detection system to eliminate the dense thermal emission background while temperature was >1273 K. Temperature-dependent Raman spectra can clearly indicate melting point of a crystal around 1143 K. Gaussian deconvolutions of complex stretching vibrational bands of crystal and amorphous states (glass and liquid) were described. Raman sensitivity factors were introduced to calculate the mole fractions of the different SiO 4 tetrahedrons. There is a decrease of Q 3 species and an increase of Q 4 and Q 2 species with increasing temperature. And after melting, the ratio of the components remain unchanged. Q 3 species decomposes again after about 1573 K. More Q n species would form with increasing temperature. Although the Q n distribution of the glass is similar to that of the liquid of melting temperature, T m ∼1143 K, the liquid structure has a greater disorder than that of the glass.
AbstractList Raman spectra of Na 2Si 2O 5 in solid and liquid states from room temperature to 1773 K were measured to observe phase transition and analyze the temperature-dependent variations of the structure units, five kinds of SiO 4 tetrahedrons, which are defined as Q 4, Q 3, Q 2, Q 1 and Q 0 species corresponding to the number of bridging oxygen binding to each Si. A pulsed copper vapor laser was used as laser source coupled with time resolved detection system to eliminate the dense thermal emission background while temperature was >1273 K. Temperature-dependent Raman spectra can clearly indicate melting point of a crystal around 1143 K. Gaussian deconvolutions of complex stretching vibrational bands of crystal and amorphous states (glass and liquid) were described. Raman sensitivity factors were introduced to calculate the mole fractions of the different SiO 4 tetrahedrons. There is a decrease of Q 3 species and an increase of Q 4 and Q 2 species with increasing temperature. And after melting, the ratio of the components remain unchanged. Q 3 species decomposes again after about 1573 K. More Q n species would form with increasing temperature. Although the Q n distribution of the glass is similar to that of the liquid of melting temperature, T m ∼1143 K, the liquid structure has a greater disorder than that of the glass.
Raman spectra of Na2Si2O5 in solid and liquid states from RT to 1773 K were measured to observe phase transition and analyze the temperature-dependent variations of the structure units, five kinds of SiO4 tetrahedrons, which are defined as Q4, Q3, Q2, Q1, and Q0 species corresponding to the number of bridging O binding to each Si. A pulsed Cu vapor laser was used as laser source coupled with time resolved detection system to eliminate the dense thermal emission background while temperature was > 1273 K. Temperature-dependent Raman spectra can clearly indicate melting point of a crystal around 1143 K. Gaussian deconvolutions of complex stretching vibrational bands of crystal and amorphous states (glass and liquid) were described. Raman sensitivity factors were introduced to calculate the mole fractions of the different SiO4 tetrahedrons. There is a decrease of Q3 species and an increase of Q4 and Q2 species with increasing temperature. After melting, the ratio of the components remain unchanged. Q3 species decomposes again after about 1573 K. More Qn species would form with increasing temperature. Although the Qn distribution of the glass is similar to that of the liquid of melting temperature, the liquid structure has greater disorder than that of the glass. 37 refs.
Author Jiang, Guochang
You, Jinglin
Xu, Kuangdi
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Keywords R110
A140
S440
L170
Raman spectra
Deconvolution
Temperature effects
Transition elements
Vibrational modes
Glass
Property structure relationship
Amorphous state
Liquid phase
Experimental study
Sodium silicates
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Snippet Raman spectra of Na 2Si 2O 5 in solid and liquid states from room temperature to 1773 K were measured to observe phase transition and analyze the...
Raman spectra of Na2Si2O5 in solid and liquid states from RT to 1773 K were measured to observe phase transition and analyze the temperature-dependent...
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StartPage 125
SubjectTerms Condensed matter: structure, mechanical and thermal properties
Exact sciences and technology
Lattice dynamics
Phonon states and bands, normal modes, and phonon dispersion
Phonons and vibrations in crystal lattices
Physics
Vibrational states in disordered systems
Title High temperature Raman spectra of sodium disilicate crystal, glass and its liquid
URI https://dx.doi.org/10.1016/S0022-3093(01)00335-0
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