• Laser & Optoelectronics Progress
  • Vol. 59, Issue 15, 1516014 (2022)
Panyi Wang1、2, Muzhi Cai1、2、*, Youjie Hua1、2, Shiqing Xu1、2, and Junjie Zhang1、2、**
Author Affiliations
  • 1Institute of Optoelectronic Materials and Devices, China Jiliang University, Hangzhou 310018, Zhejiang , China
  • 2Key Laboratory of Rare Earth Optoelectronic Materials and Devices of Zhejiang Province, Hangzhou 310018, Zhejiang , China
  • show less
    DOI: 10.3788/LOP202259.1516014 Cite this Article Set citation alerts
    Panyi Wang, Muzhi Cai, Youjie Hua, Shiqing Xu, Junjie Zhang. Optical Functional Glass and Glass-Ceramics Processed By Spark Plasma Sintering[J]. Laser & Optoelectronics Progress, 2022, 59(15): 1516014 Copy Citation Text show less
    References

    [1] Marder R, Estournès C, Chevallier G et al. Plasma in spark plasma sintering of ceramic particle compacts[J]. Scripta Materialia, 82, 57-60(2014).

    [2] Wang L J, Zhang J F, Jiang W. Recent development in reactive synthesis of nanostructured bulk materials by spark plasma sintering[J]. International Journal of Refractory Metals and Hard Materials, 39, 103-112(2013).

    [3] Riedel R, Chen I W[M]. Ceramics science and technology, volume 3: synthesis and processing(2011).

    [4] Musgraves J D, Hu J J, Calvez L[M]. Springer handbook of glass(2019).

    [5] Estournes C, Oquab D, Selezneff S et al. Shaping of nanostructured materials or coatings through spark plasma sintering[J]. Materials Science Forum, 24-30(2012).

    [6] Yanagisawa O, Hatayama T, Matsugi K. Recent research on spark sintering process[J]. Materia Japan, 33, 1489-1496(1994).

    [7] Groza J R. Nanosintering[J]. Nanostructured Materials, 12, 987-992(1999).

    [8] Groza J R, Zavaliangos A. Sintering activation by external electrical field[J]. Materials Science and Engineering: A, 287, 171-177(2000).

    [9] Munir Z A, Anselmi-Tamburini U, Ohyanagi M. The effect of electric field and pressure on the synthesis and consolidation of materials: a review of the spark plasma sintering method[J]. Journal of Materials Science, 41, 763-777(2006).

    [10] Munir Z A, Ohyanagi M. Perspectives on the spark plasma sintering process[J]. Journal of Materials Science, 56, 1-15(2021).

    [11] Hulbert D M, Anders A, Andersson J et al. A discussion on the absence of plasma in spark plasma sintering[J]. Scripta Materialia, 60, 835-838(2009).

    [12] Hulbert D M, Anders A, Dudina D V et al. The absence of plasma in “spark plasma sintering”[J]. Journal of Applied Physics, 104, 033305(2008).

    [13] Xiong Y, Liu C. State of art: applications of spark plasma sintering technique in ceramic fabrications[J]. Advanced Ceramics, 37, 227-240(2016).

    [14] Frenkel J. Viscous flow of crystalline bodies under the action of surface tension[J]. Journal de Physique I, 9, 501-559(1945).

    [15] Bordia R K, Kang S J L, Olevsky E A. Current understanding and future research directions at the onset of the next century of sintering science and technology[J]. Journal of the American Ceramic Society, 100, 2314-2352(2017).

    [16] Weinberg M C. Nucleation and crystallization in glasses andliquids[J]. Journal of the American Ceramic Society, 30, 127-133(1993).

    [17] Mayerhöfer T G, Shen Z J, Leonova E et al. Consolidated silica glass from nanoparticles[J]. Journal of Solid State Chemistry, 181, 2442-2447(2008).

    [18] Zhang J F, Tu R, Goto T. Fabrication of transparent SiO2 glass by pressureless sintering and spark plasma sintering[J]. Ceramics International, 38, 2673-2678(2012).

    [19] Mahmed N, Heczko O, Maki R et al. Novel iron oxide-silica coreshell powders compacted by using pulsed electric current sintering: optical and magnetic properties[J]. Journal of the European Ceramic Society, 32, 2981-2988(2012).

    [20] Torikai D, Barazani B, Ono E et al. Quartz crystal reinforced silica glass obtained by spark plasma sintering[J]. Journal of the Australian Ceramic Society, 49, 9-14(2013).

    [21] Singh V K, Cura M E, Liu X W et al. Tuning the mechanical and adsorption properties of silica with graphene oxide[J]. ChemPlusChem, 79, 1512-1522(2014).

    [22] Zhang X, Yu X W, Zhou B Y et al. Sinterability enhancement by collapse of mesoporous structure of SBA-15 in fabrication of highly transparent silica glass[J]. Journal of the American Ceramic Society, 98, 1056-1059(2015).

    [23] Zhang X, Gu S J, Zhou B Y et al. Solid-state sintering of glasses with optical nonlinearity from mesoporous powders[J]. Journal of the American Ceramic Society, 99, 1579-1586(2016).

    [24] Wang L J, Jiang W, Chen L D et al. Formation of a unique glass by spark plasma sintering of a zeolite[J]. Journal of Materials Research, 24, 3241-3245(2009).

    [25] Ramond L, Bernard-Granger G, Addad A et al. Sintering of soda-lime glass microspheres using spark plasma sintering[J]. Journal of the American Ceramic Society, 94, 2926-2932(2011).

    [26] Gong Y, Chen H R, He Q J et al. Preparation of Er3+/Yb3+ co-doped zeolite-derived silica glass and its upconversion luminescence property[J]. Ceramics International, 39, 8865-8868(2013).

    [27] Gu S J, Zhou B Y, Luo W et al. Near-infrared broadband photoluminescence of bismuth-doped zeolite-derived silica glass prepared by SPS[J]. Journal of the American Ceramic Society, 99, 121-127(2016).

    [28] Gu S J, Zhang X, Wang L J et al. Direct indication of a higher central temperature achieved during spark plasma sintering process of a zeolite[J]. Journal of the European Ceramic Society, 35, 1599-1603(2015).

    [29] Zhao Y Y, Sun S, Cai X F et al. Enhancement in sintering driving force derived from in situ ordered structural collapse of mesoporous powders[J]. Journal of the American Ceramic Society, 103, 5654-5663(2020).

    [30] Hubert M, Delaizir G, Monnier J et al. An innovative approach to develop highly performant chalcogenide glasses and glass-ceramics transparent in the infrared range[J]. Optics Express, 19, 23513-23522(2011).

    [31] Calvez L, Lavanant E, Novikova A et al. Te-As-Se glass destabilization using high energy milling[J]. Journal of Non-Crystalline Solids, 480, 28-33(2018).

    [32] Reux V, Calvez L, Billon S et al. High refractive index IR lenses based on chalcogenide glasses molded by spark plasma sintering[J]. Optical Materials Express, 11, 1622-1630(2021).

    [33] Bertrand A, Carreaud J, Delaizir G et al. A comprehensive study of the carbon contamination in tellurite glasses and glass-ceramics sintered by spark plasma sintering (SPS)[J]. Journal of the American Ceramic Society, 97, 163-172(2014).

    [34] Zhou C, Longley L, Krajnc A et al. Metal-organic framework glasses with permanent accessible porosity[J]. Nature Communications, 9, 5042(2018).

    [35] Qiao A, To T, Stepniewska M et al. Deformation mechanism of a metal-organic framework glass under indentation[J]. Physical Chemistry Chemical Physics: PCCP, 23, 16923-16931(2021).

    [36] Riello P, Bucella S, Zamengo L et al. Erbium-doped LAS glass ceramics prepared by spark plasma sintering (SPS)[J]. Journal of the European Ceramic Society, 26, 3301-3306(2006).

    [37] Zhang J F, Tu R, Goto T. Densification, microstructure and mechanical properties of SiO2-cBN composites by spark plasma sintering[J]. Ceramics International, 38, 351-356(2012).

    [38] Al Mansour F, Karpukhina N, Grasso S et al. The effect of spark plasma sintering on lithium disilicate glass-ceramics[J]. Dental Materials, 31, e226-e235(2015).

    [39] Fu L, Engqvist H, Xia W. Highly translucent and strong ZrO2-SiO2 nanocrystalline glass ceramic prepared by Sol-gel method and spark plasma sintering with fine 3D microstructure for dental restoration[J]. Journal of the European Ceramic Society, 37, 4067-4081(2017).

    [40] Zhao Y Y, Zhou B Y, Qiu P P et al. Ultra-low temperature preparation of mullite glass-ceramics with high transparency sintered from EMT-type zeolite[J]. Journal of the American Ceramic Society, 104, 3158-3166(2021).

    [41] Zhang Y, Liu S, Xu H J et al. Preparation and performance of Ce∶YAG phosphor-in-glass[J]. Journal of Inorganic Materials, 30, 588-592(2015).

    [42] Zhou B Y, Luo W, Liu S et al. Enhancing the performance of Ce∶YAG phosphor-in-silica-glass by controlling interface reaction[J]. Acta Materialia, 130, 289-296(2017).

    [43] Kim S, Kim B, Kim H. Optical properties of densified phosphor-in-glass LED encapsulants by spark plasma sintering[J]. Optical Materials Express, 7, 4304-4315(2017).

    [44] Huang P, Zhao Y Y, Wang J C et al. Tunable chromaticity and high color rendering index of WLEDs with CaAlSiN3∶Eu2+ and YAG∶Ce3+ dual phosphor-in-silica-glass[J]. Journal of the American Ceramic Society, 103, 4989-4998(2020).

    [45] Delaizir G, Dollé M, Rozier P et al. Spark plasma sintering: an easy way to make infrared transparent glass-ceramics[J]. Journal of the American Ceramic Society, 93, 2495-2498(2010).

    [46] Delaizir G, Gueguen Y, Hubert M et al. Investigation of the mechanisms involved in the sintering of chalcogenide glasses and the preparation of glass-ceramics by spark plasma sintering[J]. Journal of the American Ceramic Society, 95, 2211-2217(2012).

    [47] Xue B, Calvez L, Nazabal V et al. Mechanical milling and SPS used to obtain GeS2-βGeS2 infrared glass-ceramic[J]. Journal of Non-Crystalline Solids, 377, 240-244(2013).

    [48] Cui S, Boussard-Plédel C, Calvez L et al. Comprehensive study of tellurium based glass ceramics for thermoelectric application[J]. Advances in Applied Ceramics, 114, S42-S47(2015).

    [49] Huang P, Luo P L, Zhou B Y et al. Preparation and luminescence of transparent silica glass-ceramics containing LaF3∶Eu3+ nanocrystals[J]. Materials Letters, 271, 127764(2020).

    [50] Babu S, Balda R, Fernández J et al. KLaF4∶Nd3+doped transparent glass-ceramics processed by spark plasma sintering[J]. Journal of Non-Crystalline Solids, 578, 121289(2022).

    [51] Cai M Z, Calvez L, Rocherulle J et al. Aggregation-induced emission fluorophore doped phosphate glass: toward light-emitting electrochemical cells[J]. Journal of Alloys and Compounds, 897, 163196(2022).

    Panyi Wang, Muzhi Cai, Youjie Hua, Shiqing Xu, Junjie Zhang. Optical Functional Glass and Glass-Ceramics Processed By Spark Plasma Sintering[J]. Laser & Optoelectronics Progress, 2022, 59(15): 1516014
    Download Citation