首页> 外文期刊>玻璃与陶瓷期刊(英文) >Optical Band Gap, Oxidation Polarizability, Optical Basicity and Electronegativity Measurements of Silicate Glasses Using Ellipsometer and Abbe Refractometer
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Optical Band Gap, Oxidation Polarizability, Optical Basicity and Electronegativity Measurements of Silicate Glasses Using Ellipsometer and Abbe Refractometer

机译:使用椭圆仪和ABBE折射计的光带隙,硅酸盐玻璃的氧化极化性,光学碱度和电负性测量

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The values of refractive index (n) for silicate glasses (silica, soda lime and borosilicate 7059) are decreased from 1.5119 to 1.5111, 1.5086 to 1.5065 and 1.5296 to 1.5281, respectively;and the optical band gap (Eg) is increased from 9.8 to 9.81 eV, 9.845 to 9.88 eV and 9.56 to 9.58 eV, respectively over the temperature range 295 - 473 K using ellipsometer at wavelength 632.8 nm. While n is decreased from 1.5276 to 1.5274, 1.5074 to 1.5070 and from 1.5283 to 1.5281, respectively;and Eg is increased from 9.59 to 9.592 eV, 9.862 to 9.870 eV, and 9.574 to 9.58 eV, respectively over the temperature range 297 - 322 K using Abbe refractometer at wavelength 589.3 nm. The values of oxide ion polarizability [αo2- (n) and αo2-(Eg)] regarding silica, soda lime and borosilicate 7059 glasses are decreased from 1.3427 to 1.3408, 1.6014 to 1.5941, 1.4329 to 1.4193, respectively over the temperature range 295 - 473 K using ellipsometer;and are decreased from 1.3786 to 1.3764, 1.5991 to 1.5969, 1.4297 to 1.4191, respectively over the temperature range 297 - 322 K using Abbe refractometer. Similarly, the values of optical basicity [A "="">(n) and A "="">(Eg)] of silica, soda lime, and borosilicate 7059 glasses are decreased from 0.4272 to 0.4245, 0.6271 to 0.6224, 0.5045 to 0.4933, respectively over the temperature range 295 - 473 K using ellipsometer;and are decreased from 0.4586 to 0.4567, 0.6256 to 0.6242, 0.5018 to 0.4930, respectively over the temperature range 297 - 322 K using Abbe refractometer. Further, we have found that for silica, soda lime and borosilicate 7059, the values of electronegativity (ξ1av) minion="" pro="" capt","serif";"=""> QUOTE cambria="" math","serif";font-style:italic;"=""> cambria="" math","serif";"="">ζ cambria="" math","serif";"="">1av cambria="" math","serif";"="">) times="" new="" roman","serif";"=""> minion="" pro="" capt","serif";"=""> minion="" pro="" capt","serif";"=""> "=""> using Zahidnumerical model [based on αO2- "="">(n "="">) and A "="">(n)] are increased from 5.1035 to 5.5504, 4.0393 to 4.830, 4.8143 to 5.0111, respectively over the temperature range 295 - 473 K using ellipsometer;while these values are increased from 5.0657 to 5.2149, 5.0657 to 5.2149, 4.8357 to 5.0111, respectively over the temperature range 297 - 322 K using Abbe refractometer. It is very clear from this research report that both refractive index and optical band gap-based-oxide ion polarizability and optical basicity have the same decreasing trend as the temperature is increased, and this trend indicates that the reported glasses have a very small amount of electronic polarizability. Moreover, this decreasing trend occurs due to the "="">decreasing amount of non-bridging oxygen (NBO) which in turn caused a decrease in refractive index within the silicate glass system at higher temperature. Since the calculated values of electronegativity are found to be in the range 4.0393 - 5.5504 for the reported silicate glasses, so all these glasses have an ionic character. Moreover, low values of optical basicity and of oxide ion polarizability suggest that the silicate glasses are not novel glasses (optical functional glasses) for non-linear optical (NLO) devices or for three dimensional displays.
机译:硅酸盐玻璃(二氧化硅,钠钙和硼硅酸盐7059)的折射率(N)的值分别从1.5119到1.5111,1.5086至1.5065和1.5296至1.5281降低;光带隙(例如)从9.8增加到9.81eV,9.845至9.88eV和9.56至9.58eV,分别在波长632.8nm处使用椭圆仪的温度范围295-473k。虽然n从1.5276降至1.5274,1.5074至1.5070分别从1.5283到1.5274,分别从9.59到9.592 eV,9.862至9.870eV,9.574至9.58eV,9.574至9.58eV分别在297 - 322 k上增加到9.574至9.58eV。使用波长589.3nm的Abbe折射计。关于二氧化硅,钠石灰和硼硅酸盐7059玻璃的氧化物离子极化性[αO2-(n)和α-(例如)]分别从1.3427〜1.3408,1.6014至1.5941,1.4329至1.4193分别在温度范围内降低295 - 473 k使用椭圆计;使用ABBE折射仪分别在温度范围内,从1.5991至1.5969,1.5991至1.4191减少到1.5991至1.4191。类似地,光学碱度的值[ a “=”“>( n )和 a 二氧化硅,钠石灰和硼硅酸盐7059玻璃的<跨度“=”“>( e <亚> g )从0.4272〜0.4245,0.6271至0.6224,0.5045至0.4933减少分别在温度范围内使用椭圆折射率在295-473K上;使用ABBE折射计分别在温度范围内的0.4586至0.4567,0.5256至0.4930.018至0.4930。 [进一步,我们发现,对于二氧化硅,钠石灰和硼硅酸盐7059,电负性值(ξ 1av <跨度minion =“pro =”“capt”,“serif”;“=”“> quote cambria =”math“,”serif“; font-style:tealic;”=“> < / span> cambria =“math”,“serif”;“=”“>ζ cambria =”math“,”serif“;”=“”> 1av < Span Cambria =“Math”,“Serif”;“=”“>) <跨度=”new =“”罗马“,”serif“;”=“> Minion =“pro =”“capt”,“serif”;“=”“> minion =”pro =“”capt“,”serif“;”=“> “=”“>使用 zahid 数值 型号 [基于 α O2 - “=”“>( n ”=“”>)和< b> “=”“>( n )] 从5.1035至5.5504,4.0393至4.830,4.8143至5.0111,使用椭圆仪分别在温度范围内;虽然这些值从5.0657增加到5.2149,5.0657至5.2149,4.8357至5.0111,respe使用ABBE折射仪在温度范围内覆盖297-322 k。从该研究报告非常清楚的是,随着温度的增加,折射率和光学带隙相形离子极化性和光学碱度都具有相同的降低趋势,并且这种趋势表明报告的眼镜具有很少的少量电子极化性。此外,由于<跨度“=”“>递减的氧化氧( NBO)的增加量而发生这种降低的趋势,这反过来在较高温度下导致硅酸盐玻璃系统内的折射率降低。由于 计算出的 electheranygativity 被发现在8.0393 - 5.5504的报告的硅酸盐眼镜的范围内,所以所有这些眼镜都有一个离子特征。此外,光学碱度和氧化物离子极化性的低值表明硅酸盐玻璃不是新的玻璃(光学功能玻璃)对于非线性光学(NLO)器件或三维显示器。

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