[1] 魏延召. 功能型建筑陶瓷及应用研究[J]. 陶瓷, 2023(4): 191-193. WEI Y Z. Research on functional building ceramics and their application[J]. Ceramics, 2023(4): 191-193 (in Chinese). [2] 李 玫, 李伟东, 鲁晓珂, 等. 铁系结晶釉的可控制备与装饰效果[J]. 硅酸盐学报, 2020, 48(7): 1134-1144. LI M, LI W D, LU X K, et al. Controllable preparation and decorative effect of iron-based crystalline glazes[J]. Journal of the Chinese Ceramic Society, 2020, 48(7): 1134-1144 (in Chinese). [3] 赵效忠. 我国现代结晶釉的回顾与展望[J]. 山东陶瓷, 2016, 39(2): 3-11. ZHAO X Z. Review and prospect of modern crystalline glazes in China[J]. Shandong Ceramics, 2016, 39(2): 3-11 (in Chinese). [4] 李秀鹏. 披在陶瓷身上的华丽服装: 结晶釉[J]. 文艺生活·下旬刊, 2019(5): 17. LI X P. Gorgeous clothing covered with ceramics: crystalline glaze[J]. Literature Life (Next Trimonthly Publication), 2019(5): 17 (in Chinese). [5] 焦 晨, 梁绘昕, 叶 昀, 等. 光固化生物陶瓷功能化研究进展[J]. 材料工程, 2022, 50(7): 30-39. JIAO C, LIANG H X, YE Y, et al. Research progress in functionalization of photocured bioceramics[J]. Journal of Materials Engineering, 2022, 50(7): 30-39 (in Chinese). [6] VERGER L, DARGAUD O, MENGUY N, et al. Interaction between Cr-bearing pigments and transparent glaze: a transmission electron microscopy study[J]. Journal of Non-Crystalline Solids, 2017, 459: 184-191. [7] 赵海岩. 锐钛矿TiO2结晶釉的制备与光催化性能研究[D]. 广州: 华南理工大学, 2019. ZHAO H Y. Preparation and photocatalytic properties of anatase TiO2 crystalline glaze[D]. Guangzhou: South China University of Technology, 2019 (in Chinese). [8] 刘 萍, 林益军, 艾陈祥, 等. 自清洁表面研究进展[J]. 涂料工业, 2016, 46(5): 76-80. LIU P, LIN Y J, AI C X, et al. Research progress in self-cleaning surface[J]. Paint & Coatings Industry, 2016, 46(5): 76-80 (in Chinese). [9] 刘俊荣. 陶瓷釉面抗菌砖的研究进展[J]. 陶瓷, 2022(8): 48-50. LIU J R. Research progress of ceramic glaze antibacterial brick[J]. Ceramics, 2022(8): 48-50 (in Chinese). [10] 刘文文. 一种抗菌、易洁卫生陶瓷釉料的研制[J]. 佛山陶瓷, 2022, 32(2): 10-13. LIU W W. Preparation of a antibacterial and easy cleaning sanitary glaze[J]. Foshan Ceramics, 2022, 32(2): 10-13 (in Chinese). [11] 郑 明, 杨 健, 张怡笑, 等. Sm3+掺杂0.94Bi0.5Na0.5TiO3-0.06BaTiO3无机多功能陶瓷的储能行为和光致发光性质[J]. 物理学报, 2023, 72(17): 306-312. ZHENG M, YANG J, ZHANG Y X, et al. Energy storage and photoluminescence properties of Sm3+-doped 0.94Bi0.5Na0.5TiO3-0.06BaTiO3 multifunctional ceramics[J]. Acta Physica Sinica, 2023, 72(17): 306-312 (in Chinese). [12] 邓志华, 董伟霞, 顾幸勇, 等. 二氧化钛对分相液滴自清洁釉的性能影响[J]. 人工晶体学报, 2020, 49(1): 138-143+157. DENG Z H, DONG W X, GU X Y, et al. Effect of titanium dioxide on properties of phase droplet self-cleaning glaze[J]. Journal of Synthetic Crystals, 2020, 49(1): 138-143+157 (in Chinese). [13] 张 影. 银改性二氧化钛、钒酸铋光催化剂的釉面瓷砖负载技术及其灭菌活性研究[D]. 重庆: 重庆大学, 2021. ZHANG Y. Study on loading technology and sterilization activity of glazed tile with silver modified titanium dioxide and bismuth vanadate photocatalyst[D]. Chongqing: Chongqing University, 2021 (in Chinese). [14] 卢广坚, 杨宇航, 陈艳林. 自洁抗菌TiO2陶瓷研究进展[J]. 陶瓷, 2023(9): 9-13. LU G J, YANG Y H, CHEN Y L. Research progress of self-cleaning antibacterial TiO2 ceramics[J]. Ceramics, 2023(9): 9-13 (in Chinese). [15] 黄剑锋, 汪庆刚, 刘一军, 等. 钨基陶瓷结晶釉的快速结晶制备及其光催化性能探索[J]. 人工晶体学报, 2017, 46(9): 1755-1758+1766. HUANG J F, WANG Q G, LIU Y J, et al. Rapid crystallized preparation of tungsten based ceramic glaze and its photocatalytic performance research[J]. Journal of Synthetic Crystals, 2017, 46(9): 1755-1758+1766 (in Chinese). [16] 李嘉胤. 氧化钨水合物微/纳米材料的可控合成及其性能研究[D]. 西安: 陕西科技大学, 2013. LI J Y. Controllable synthesis and properties of tungsten oxide hydrate micro/nano materials[D]. Xi’an: Shaanxi University of Science & Technology, 2013 (in Chinese). [17] 汪庆刚. 高强度超薄建筑陶瓷板材的制备、增强和性能研究[D]. 西安: 陕西科技大学, 2019. WANG Q G. Study on preparation, reinforcement and properties of high strength and ultra-thin building ceramic plates[D]. Xi’an: Shaanxi University of Science & Technology, 2019 (in Chinese). [18] LI J Y, HUANG J F, WU J P, et al. Microwave-assisted growth of WO3·0.33H2O micro/nanostructures with enhanced visible light photocatalytic properties[J]. CrystEngComm, 2013, 15(39): 7904. [19] SONGARA S, GUPTA V, KUMAR PATRA M, et al. Tuning of crystal phase structure in hydrated WO3 nanoparticles under wet chemical conditions and studies on their photochromic properties[J]. Journal of Physics and Chemistry of Solids, 2012, 73(7): 851-857. [20] SAISON T, CHEMIN N, CHANÉAC C, et al. Bi2O3, BiVO4, and Bi2WO6: impact of surface properties on photocatalytic activity under visible light[J]. The Journal of Physical Chemistry C, 2011, 115(13): 5657-5666. [21] REUTER L, LÜCHOW A. On the connection between probability density analysis, QTAIM, and VB theory[J]. Physical Chemistry Chemical Physics, 2020, 22(44): 25892-25903. [22] HIEMSTRA T, VENEMA P, VAN RIEMSDIJK W H. Intrinsic proton affinity of reactive surface groups of metal (hydr)oxides: the bond valence principle[J]. Journal of Colloid and Interface Science, 1996, 184(2): 680-692. |