Structural Origin of Additional Infrared Transparency and Enhanced Glass-Forming Ability in Rare-Earth-Rich Borate Glasses without B–O Networks
R2O3–B2O3 binary glasses (R denotes rare-earth elements or Y) were fabricated in a very wide composition region using a levitation technique. The maximum R2O3 content of light rare-earth compounds reached 63 mol % and decreased with a decrease in the ionic radius of R3+. The thermal, optical, vibrat...
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Veröffentlicht in: | Inorganic chemistry 2020-10, Vol.59 (19), p.13942-13951 |
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creator | Sasaki, Shunta Masuno, Atsunobu Ohara, Koji Yanaba, Yutaka Inoue, Hiroyuki Watanabe, Yasuhiro Kohara, Shinji |
description | R2O3–B2O3 binary glasses (R denotes rare-earth elements or Y) were fabricated in a very wide composition region using a levitation technique. The maximum R2O3 content of light rare-earth compounds reached 63 mol % and decreased with a decrease in the ionic radius of R3+. The thermal, optical, vibrational, and structural properties were investigated, particularly for 50R2O3–50B2O3 glasses. The glass transition temperature increased with a decrease in the ionic radius of R3+, while the thermal stability was not affected by the glass composition. The packing density increased with a decrease in the ionic radius of R3+ due to lanthanoid contraction. Raman scattering and Fourier transform infrared spectra revealed that, in the rare-earth-rich glasses, no conventional three-dimensional networks consisting of corner-sharing BO n (n = 3 or 4) units existed because all B atoms were formed as isolated BO3 units. The simple environment around B atoms in the glasses led to additional IR transmittance regions, irrespective of the kinds of R. The total correlation functions obtained from high-energy X-ray diffraction measurements were analyzed using the pair-function method and compared with those of various RBO3 crystalline phases. It was suggested that the local structure around R resembles the ν-NdBO3-type crystal structure, and the O coordination number of R ranged from 6.5 to 7.7, smaller than that of the crystalline phase. The glass-forming ability depending on R was discussed based on the structural similarities between the melt, glass, and crystalline phases. |
doi_str_mv | 10.1021/acs.inorgchem.0c01567 |
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The maximum R2O3 content of light rare-earth compounds reached 63 mol % and decreased with a decrease in the ionic radius of R3+. The thermal, optical, vibrational, and structural properties were investigated, particularly for 50R2O3–50B2O3 glasses. The glass transition temperature increased with a decrease in the ionic radius of R3+, while the thermal stability was not affected by the glass composition. The packing density increased with a decrease in the ionic radius of R3+ due to lanthanoid contraction. Raman scattering and Fourier transform infrared spectra revealed that, in the rare-earth-rich glasses, no conventional three-dimensional networks consisting of corner-sharing BO n (n = 3 or 4) units existed because all B atoms were formed as isolated BO3 units. The simple environment around B atoms in the glasses led to additional IR transmittance regions, irrespective of the kinds of R. The total correlation functions obtained from high-energy X-ray diffraction measurements were analyzed using the pair-function method and compared with those of various RBO3 crystalline phases. It was suggested that the local structure around R resembles the ν-NdBO3-type crystal structure, and the O coordination number of R ranged from 6.5 to 7.7, smaller than that of the crystalline phase. 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Chem</addtitle><description>R2O3–B2O3 binary glasses (R denotes rare-earth elements or Y) were fabricated in a very wide composition region using a levitation technique. The maximum R2O3 content of light rare-earth compounds reached 63 mol % and decreased with a decrease in the ionic radius of R3+. The thermal, optical, vibrational, and structural properties were investigated, particularly for 50R2O3–50B2O3 glasses. The glass transition temperature increased with a decrease in the ionic radius of R3+, while the thermal stability was not affected by the glass composition. The packing density increased with a decrease in the ionic radius of R3+ due to lanthanoid contraction. Raman scattering and Fourier transform infrared spectra revealed that, in the rare-earth-rich glasses, no conventional three-dimensional networks consisting of corner-sharing BO n (n = 3 or 4) units existed because all B atoms were formed as isolated BO3 units. The simple environment around B atoms in the glasses led to additional IR transmittance regions, irrespective of the kinds of R. The total correlation functions obtained from high-energy X-ray diffraction measurements were analyzed using the pair-function method and compared with those of various RBO3 crystalline phases. It was suggested that the local structure around R resembles the ν-NdBO3-type crystal structure, and the O coordination number of R ranged from 6.5 to 7.7, smaller than that of the crystalline phase. The glass-forming ability depending on R was discussed based on the structural similarities between the melt, glass, and crystalline phases.</description><issn>0020-1669</issn><issn>1520-510X</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2020</creationdate><recordtype>article</recordtype><recordid>eNqFUctOGzEUtSoqNdB-QiUv2Uy4Ho_HM8uAAkVCRAIqdTdyPHbGMLHTa49Qdv0F1D_sl2AU1C2re3TPY3EOId8ZzBmU7EzpOHc-4EYPZjsHDUzU8hOZMVFCIRj8OiIzgIxZXbdfyHGMjwDQ8qqekZf7hJNOE6qRrtBtnKfB0kXfu-SCz89rb1Gh6ekDKh93GXq9p8r3dOkH5XVmrkYVY3EZcOv8hi7WbnRpT3PSXVYXS4VpKO6cHuh5QJXMQW8ifXZpCFOi5__-_F3RW5OeAz7Fr-SzVWM0397vCfl5uXy4-FHcrK6uLxY3heJtlYoSetWUlWnB9gqsFaLsdVtJW60lcCu1abgRmleNkCWvKyW1ZI3uueDA1nbNT8jpIXeH4fdkYuq2LmozjsqbMMWurHjdyFyUzFJxkGoMMaKx3Q7dVuG-Y9C9TdDlCbr_E3TvE2QfO_je6McwYS40fuB5BUJckgA</recordid><startdate>20201005</startdate><enddate>20201005</enddate><creator>Sasaki, Shunta</creator><creator>Masuno, Atsunobu</creator><creator>Ohara, Koji</creator><creator>Yanaba, Yutaka</creator><creator>Inoue, Hiroyuki</creator><creator>Watanabe, Yasuhiro</creator><creator>Kohara, Shinji</creator><general>American Chemical Society</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7X8</scope><orcidid>https://orcid.org/0000-0002-3134-512X</orcidid><orcidid>https://orcid.org/0000-0001-9596-2680</orcidid><orcidid>https://orcid.org/0000-0003-0667-9782</orcidid></search><sort><creationdate>20201005</creationdate><title>Structural Origin of Additional Infrared Transparency and Enhanced Glass-Forming Ability in Rare-Earth-Rich Borate Glasses without B–O Networks</title><author>Sasaki, Shunta ; Masuno, Atsunobu ; Ohara, Koji ; Yanaba, Yutaka ; Inoue, Hiroyuki ; Watanabe, Yasuhiro ; Kohara, Shinji</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-a394t-20da824e90fda0ff552dc947f4b703f7ce83e5c348572364a7c718cd35301bfb3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2020</creationdate><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Sasaki, Shunta</creatorcontrib><creatorcontrib>Masuno, Atsunobu</creatorcontrib><creatorcontrib>Ohara, Koji</creatorcontrib><creatorcontrib>Yanaba, Yutaka</creatorcontrib><creatorcontrib>Inoue, Hiroyuki</creatorcontrib><creatorcontrib>Watanabe, Yasuhiro</creatorcontrib><creatorcontrib>Kohara, Shinji</creatorcontrib><collection>CrossRef</collection><collection>MEDLINE - Academic</collection><jtitle>Inorganic chemistry</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Sasaki, Shunta</au><au>Masuno, Atsunobu</au><au>Ohara, Koji</au><au>Yanaba, Yutaka</au><au>Inoue, Hiroyuki</au><au>Watanabe, Yasuhiro</au><au>Kohara, Shinji</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Structural Origin of Additional Infrared Transparency and Enhanced Glass-Forming Ability in Rare-Earth-Rich Borate Glasses without B–O Networks</atitle><jtitle>Inorganic chemistry</jtitle><addtitle>Inorg. Chem</addtitle><date>2020-10-05</date><risdate>2020</risdate><volume>59</volume><issue>19</issue><spage>13942</spage><epage>13951</epage><pages>13942-13951</pages><issn>0020-1669</issn><eissn>1520-510X</eissn><abstract>R2O3–B2O3 binary glasses (R denotes rare-earth elements or Y) were fabricated in a very wide composition region using a levitation technique. The maximum R2O3 content of light rare-earth compounds reached 63 mol % and decreased with a decrease in the ionic radius of R3+. The thermal, optical, vibrational, and structural properties were investigated, particularly for 50R2O3–50B2O3 glasses. The glass transition temperature increased with a decrease in the ionic radius of R3+, while the thermal stability was not affected by the glass composition. The packing density increased with a decrease in the ionic radius of R3+ due to lanthanoid contraction. Raman scattering and Fourier transform infrared spectra revealed that, in the rare-earth-rich glasses, no conventional three-dimensional networks consisting of corner-sharing BO n (n = 3 or 4) units existed because all B atoms were formed as isolated BO3 units. The simple environment around B atoms in the glasses led to additional IR transmittance regions, irrespective of the kinds of R. The total correlation functions obtained from high-energy X-ray diffraction measurements were analyzed using the pair-function method and compared with those of various RBO3 crystalline phases. It was suggested that the local structure around R resembles the ν-NdBO3-type crystal structure, and the O coordination number of R ranged from 6.5 to 7.7, smaller than that of the crystalline phase. The glass-forming ability depending on R was discussed based on the structural similarities between the melt, glass, and crystalline phases.</abstract><pub>American Chemical Society</pub><doi>10.1021/acs.inorgchem.0c01567</doi><tpages>10</tpages><orcidid>https://orcid.org/0000-0002-3134-512X</orcidid><orcidid>https://orcid.org/0000-0001-9596-2680</orcidid><orcidid>https://orcid.org/0000-0003-0667-9782</orcidid></addata></record> |
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title | Structural Origin of Additional Infrared Transparency and Enhanced Glass-Forming Ability in Rare-Earth-Rich Borate Glasses without B–O Networks |
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