Chemical Research in Chinese Universities ›› 2026, Vol. 42 ›› Issue (3): 833-857.doi: 10.1007/s40242-025-5279-2
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ZHANG Zihan1, SHEN Rongchen1, REN Zhiqiang2, LIANG Guijie3, ZHANG Peng4, LI Shijie5, LI Xin1
Received:2025-11-25
Accepted:2025-12-15
Published:2026-06-02
Contact:
LI Xin,E-mail:Xinli@scau.edu.cn;LI Shijie,E-mail:lishijie@zjou.edu.cn;ZHANG Peng,E-mail:zhangp@zzu.edu.cn;LIANG Guijie,E-mail:guijie-liang@hbuas.edu.cn
E-mail:Xinli@scau.edu.cn;lishijie@zjou.edu.cn;zhangp@zzu.edu.cn;guijie-liang@hbuas.edu.cn
Supported by:ZHANG Zihan, SHEN Rongchen, REN Zhiqiang, LIANG Guijie, ZHANG Peng, LI Shijie, LI Xin. Local Microenvironment Regulation of Covalent Organic Frameworks for Enhanced Photocatalysis[J]. Chemical Research in Chinese Universities, 2026, 42(3): 833-857.
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| [1] Li C., Lu H., Ding G., Ma T., Liu S., Zhang L., Liao G., Chinese J. Catal., 2024, 65, 174. [2] Zhou X., Xian Y., Li Z., Yujie C., Luo J., Ning X., Fan X., Zhong Y., Zhou X., Sep. Purif. Technol., 2025, 357, 130117. [3] Zhou X., Liang Z., Wu Z., Zhou X., Ning X., Zhan L., Luo J., Adv. Powder Technol., 2025, 36, 104858. [4] Yan Y., Hao L., Ren Z., Shen R., Liang G., Zhang P., Teng Y., Xu D., Li X., J. Mater. Sci. Technol., 2026, 249, 305. [5] Shao Y., Shen R., Wang S., Li S., Zhang P., Li X., Acta Phys-Chim. Sin., 2025, 41, 100176. [6] Qi B., Shen R., Ke Z., Wang S., Li Y., Zhang P., Xu D., Li X., Rare Metals., 2025, 1. [7] Wakerley D. W., Kuehnel M. F., Orchard K. L., Ly K. H., Rosser T. E., Reisner E., Nat Energy, 2017, 2, 1. [8] Wu Y., Wang H., Sun Y. M., Xiao T., Tu W. G., Yuan X. Z., Zeng G. M., Li S. Z., Chew J. W., Applied Catalysis B: Environment and Energy, 2018, 227, 530. [9] Chen G., Waterhouse G. I. N., Shi R., Zhao J., Li Z., Wu L. Z., Tung C. H., Zhang T., Angew. Chem. Int. Ed., 2019, 58, 17528. [10] Sun X., Jiang S., Huang H., Li H., Jia B., Ma T., Angew. Chem. Int. Ed., 2022, 61, e202204880. [11] Zheng Z. Y., Tian S., Feng Y. X., Zhao S., Li X., Wang S. G., He Z. L., Chinese J. Catal., 2023, 54, 88. [12] Zhou W. J., Jing Q. H., Li J. X., Chen Y. Z., Hao G. D., Wang L. N., Acta Phys-Chim. Sin., 2023, 39, 2211010. [13] Bu R., Lu Y., Zhang B., Chem. Res. Chinese Universities, 2022, 38, 1151. [14] Zhang Q., Han B., Jin Y., Li M., Zhang E., Jiang J., Chinese Chem. Lett., 2025, 36, 110330. [15] Lu M., Zhang M., Liu J., Chen Y., Liao J.-P., Yang M.-Y., Cai Y.-P., Li S.-L., Lan Y.-Q., Angew. Chem. Int. Ed., 2022, 61, e202200003. [16] Biswas S., Dey A., Rahimi F. A., Barman S., Maji T. K., ACS Catal., 2023, 13, 5926. [17] Li Q., Tang Q., Xiong P., Chen D., Chen J., Wu Z., Wang H., Chinese J. Catal., 2023, 46, 177. [18] Shen R., Qin C., Hao L., Li X., Zhang P., Li X., Adv. Mater., 2023, 35, e2305397. [19] Xie Y., Zhang Q., Sun H., Teng Z., Su C., Acta Phys-Chim. Sin., 2023, 39, 2301001. [20] Chen G., Zheng Z., Zhong W., Wang G., Wu X., Acta Phys-Chim. Sin., 2024, 40, 2406021. [21] Ding H., Shen R., Huang K., Huang C., Liang G., Zhang P., Li X., Adv. Funct. Mater., 2024, 34, 2400065. [22] Liu Z. K., Jin F., Li X., Zhang P., Jin Z. L., J. Mater. Sci. Technol., 2024, 188, 131. [23] Xia Y., Zhang K., Yang H., Shi L., Yi Q., Acta Phys-Chim. Sin., 2024, 40, 2407012. [24] Xu Y., Ren Y., Liu X., Li H., Lu Z., Acta Phys-Chim. Sin., 2024, 40, 2403032. [25] Qiu J., Meng K., Zhang Y., Cheng B., Zhang J., Wang L., Yu J., Adv. Mater., 2024, 36, 2400288. [26] Lu W., Qin T., Wang B., Li J., Zhu H., Bai G., Li Y., Chen L., Yan X., ChemPhotoChem, 2023, 7, e202200230. [27] Yang W., Zhang J., Xu Q., Yang Y., Zhang L., Acta Phys-Chim. Sin., 2024, 40, 9. [28] You P., Wei R., Ning G., Li D., Chem. Res. Chinese Universities, 2022, 38, 415. [29] Yu H., Zhang X., Chen Q., Zhou P.-K., Xu F., Wang H., Chen X., Chem. Res. Chinese Universities, 2025, 41, 734. [30] Ma H.-C., Gu M.-Y., Li M.-Z., Gu C.-Y., Zhu D.-F., Chen G.-J., Dong Y.-B., Angew. Chem. Int. Ed., 2025, 64, e202506509. [31] Fujishima A., Honda K., Nature, 1972, 238, 37. [32] Zhi M., Tang H., Wu M., Ouyang C., Hong Z., Wu N., Energ. Fuel., 2022, 36, 11359. [33] Sun Z., Wang H., Wu Z., Wang L., Catal. Today, 2018, 300, 160. [34] Zhao B., Zhong W., Chen F., Wang P., Bie C., Yu H., Chinese J. Catal., 2023, 52, 127. [35] Zheng Y., Lin L., Wang B., Wang X., Angew. Chem. Int. Ed., 2015, 54, 12868. [36] Lopez-Magano A., Daliran S., Oveisi A. R., Mas-Balleste R., Dhakshinamoorthy A., Aleman J., Garcia H., Luque R., Adv. Mater., 2023, 35, e2209475. [37] Ai L., Zhang C., Li L., Jiang J., Applied Catalysis B: Environment and Energy, 2014, 148, 191. [38] Isaka Y., Kawase Y., Kuwahara Y., Mori K., Yamashita H., Angew. Chem. Int. Ed., 2019, 58, 5402. [39] Chen L., Wang L., Wan Y., Zhang Y., Qi Z., Wu X., Xu H., Adv. Mater., 2020, 32, e1904433. [40] Yu X., Viengkeo B., He Q., Zhao X., Huang Q., Li P., Huang W., Li Y., Adv. Sustain. Syst., 2021, 5, 2100184. [41] Zheng Y., Gao T., Chen S., Ferguson C. T. J., Zhang K. A. I., Fang F., Shen Y., Khan N. A., Wang L., Ye L., Composites Communications, 2022, 36, 101390. [42] Krishnaraj C., Jena H. S., Bourda L., Laemont A., Pachfule P., Roeser J., Chandran C. V., Borgmans S., Rogge S. M. J., Leus K., Stevens C.V., Martens J. A., Van Speybroeck V., Breynaert E., Thomas A., Van der Voort P., J. Am. Chem. Soc., 2020, 142, 20107. [43] Qin C., Wu X., Tang L., Chen X., Li M., Mou Y., Su B., Wang S., Feng C., Liu J., Yuan X., Zhao Y., Wang H., Nat. Commun., 2023, 14, 5238. [44] Liu S., Liang G., Wang S., Hu Q., Crystengcomm., 2025, 27, 3643. [45] An G., Zhang X., Zhang C., Gao H., Liu S., Qin G., Qi H., Kasemchainan J., Zhang J., Wang G., Chinese J. Catal., 2023, 50, 126. [46] Kang D. W., Kang M., Kim H., Choe J.H., Kim D. W., Park J. R., Lee W. R., Moon D., Hong C. S., Angew. Chem. Int. Ed., 2019, 58, 16152. [47] Leiu Y. X., Lim K. M., Chiah Z.-J., Mah E. S.-Z., Ong W.-J., EcoEnergy, 2025, 3, 217. [48] Wang H., Ding H., Meng X., Wang C., Chinese Chem. Lett., 2016, 27, 1376. [49] Yang Y., Liang B., Kreie J., Hambsch M., Liang Z., Wang C., Huang S., Dong X., Gong L., Liang C., Lou D., Zhou Z., Lu J., Yang Y., Zhuang X., Qi H., Kaiser U., Mannsfeld S. C. B., Liu W., Goelzhaeuser A., Zheng Z., Nature, 2024, 630, 878. [50] Chang J., Zhang Z., Zheng H., Li H., Suo J., Ji C., Chen F., Zhang S., Wang Z., Valtchev V., Qiu S., Sun J., Fang Q., Nat. Chem., 2025, 17, 571. [51] Ma F., Tang Q., Xi S., Li G., Chen T., Ling X., Lyu Y., Liu Y., Zhao X., Zhou Y., Wang J., Chinese J. Catal., 2023, 48, 137. [52] Wang L. Y., Yu J. J., Wang S., Liu Y., Song K. X., Yu J. P., Yuan L. Y., Liu Z. R., Shi W. Q., Chinese Chem. Lett., 2025, 36, 110706. [53] Côté A. P., Benin A. I., Ockwig N. W., O’Keeffe M., Matzger A. J., Yaghi O. M., Science, 2005, 310, 1166. [54] Zhang H., Liu J., Zhang Y., Cheng B., Zhu B., Wang L., J. Mater. Sci. Technol., 2023, 166, 241. [55] Zhao C., Yang C., Lv X., Wang S., Hu C., Zheng G., Han Q., Adv. Mater., 2024, 36, e2401004. [56] Liu H., Wang D., Yu Z., Chen Y., Li X., Zhang R., Chen X., Wu L., Ding N., Wang Y., Zhao Y., Sci. China Mater., 2023, 66, 2283. [57] Li S., Chen X., Yuan Y., Acta Phys-Chim. Sin., 2023, 39, 2303032. [58] Jin Y., Liu X., Qu C., Li C., Wang H., Zhan X., Cao X., Li X., Yu B., Zhang Q., Qi D., Jiang J., Chinese J. Catal., 2024, 57, 171. [59] Yang W., Zhang J., Xu Q., Yang Y., Zhang L., Acta Phys-Chim. Sin., 2024, 40, 2312014. [60] Li J., Chen G., Chen C., Lou Y., Xing Z., Zhang T., Gong C., Peng Y., Chinese Chem. Lett., 2025, 36, 109760. [61] Fan H., Mundstock A., Feldhoff A., Knebel A., Gu J., Meng H., Caro J., J. Am. Chem. Soc., 2018, 140, 10094. [62] Martin-Illan J. A., Rodriguez-San-Miguel D., Castillo O., Beobide G., Perez-Carvajal J., Imaz I., Maspoch D., Zamora F., Angew. Chem. Int. Ed., 2021, 60, 13969. [63] Feng J., Kong F., Yue W.-S., Yu H., He Z.-L., Zhai Y.-N., Dong Y.-B., Sci. China Mater., 2023, 66, 4079. [64] Lei Z., Yang Q., Xu Y., Guo S., Sun W., Liu H., Lv L.-P., Zhang Y., Wang Y., Nat. Commun., 2018, 9, 576. [65] Lv J., Tan Y.-X., Xie J., Yang R., Yu M., Sun S., Li M.-D., Yuan D., Wang Y., Angew. Chem. Int. Ed., 2018, 57, 12716. [66] Niu Q., Mi L., Chen W., Li Q., Zhong S., Yu Y., Li L., Chinese J. Catal., 2023, 50, 45. [67] Tang J., Liang Z., Qin H., Liu X., Zhai B., Su Z., Liu Q., Lei H., Liu K., Zhao C., Cao R., Fang Y., Angew. Chem. Int. Ed., 2023, 62, e202214449. [68] Ding S.-Y., Dong M., Wang Y.-W., Chen Y.-T., Wang H.-Z., Su C.-Y., Wang W., J. Am. Chem. Soc., 2016, 138, 3031. [69] Wu X., Han X., Xu Q., Liu Y., Yuan C., Yang S., Liu Y., Jiang J., Cui Y., J. Am. Chem. Soc., 2019, 141, 7081. [70] Zhao X., Wang Y., Han G., Yu G., Ren G., Li X., Zhang T., Sun L., Zhao Y., Sci. China. Chem., 2025, 68, 3707. [71] Liu R., Zhao D., Ji S., Shao H., Chen Y., Feng M., Wang T., Li J., Lin M., Sum T. C., Yan N., Seki S., Jiang D., Nat. Mater., 2025, 24, 1245. [72] Zhao W., Sun L., Yang L., Zhang R., Ren G., Wang S., Wu H., Kang X., Deng W.-Q., Liu C., Sci. China Mater., 2024, 68, 165. [73] Gu Z., Shan Z., Wang Y., Wang J., Liu T., Li X., Yu Z., Su J., Zhang G., Chinese Chem. Lett., 2024, 35, 7. [74] Wang L., Du H., Wang X., Hao D., Li Q., Zhu H., Li C., Wang Q., Environ. Res., 2025, 272, 121166. [75] Luan T.-X., Wang Q., Zhang P., Li W., Kong S., Feng Y., Yuan S., Li P.-Z., Sci. China Mater., 2023, 67, 125. [76] Ran H., Liu X., Ye L., Fan J., Zhu B., Xu Q., Wei Y., J. Mater. Sci. Technol., 2025, 234, 24. [77] Kuai Y., Wang Y., Carbon Neutrality, 2024, 3, 36. [78] Feng J., Ren W.-X., Kong F., Zhang C., Dong Y.-B., Sci. China Mater., 2021, 65, 1122. [79] Zhao Y., Zhang Y., Wang L., Ai C., Zhang J., J. Mater. Sci. Technol., 2025, 229, 213. [80] Liu B., Meng K., Cheng B., Wang L., Liang G., Bie C., J. Mater. Sci. Technol., 2025, 231, 286. [81] Liu C., Gao T., Wang G., Cheng Q., Wang K., Chem. Res. Chinese Universities, 2025, 41, 726. [82] Liu H., Yan X., Chen W., Xie Z., Li S., Chen W., Zhang T., Xing G., Chen L., Sci. China. Chem., 2021, 64, 827. [83] Liu S., Guo J., Chem. Res. Chinese Universities, 2022, 38, 373. [84] Liu X., Yang X., Ding X., Wang H., Cao W., Jin Y., Yu B., Jiang J., Chinese Chem. Lett., 2023, 34, 5. [85] Ni C., Wang X., Cai X., Yu C., Wu Q., Shen Y., Hao C., J. Mater. Sci. Technol., 2025, 210, 233. [86] Xie F., Bie C., Sun J., Zhang Z., Zhu B., J. Mater. Sci. Technol., 2024, 170, 87. [87] Wu C., Li X., Shao M., Kan J., Wang G., Geng Y., Dong Y.-B., Chinese Chem. Lett., 2022, 33, 4559. [88] Xu M., Li Z., Shen R., Zhang X., Zhang Z., Zhang P., Li X., Chinese J. Catal., 2025, 70, 431. [89] Yan S., Zhang B., Liu W., Duan F., Li Y., Ren Y., Lu S., Du M., Chen M., Chem. Res. Chinese Universities, 2025, 41, 495. [90] Liu F., Zhou P., Hou Y., Tan H., Liang Y., Liang J., Zhang Q., Guo S., Tong M., Ni J., Nat. Commun., 2023, 14, 4344. [91] Chen Z., Wang J., Hao M., Xie Y., Liu X., Yang H., Waterhouse G. I. N., Wang X., Ma S., Nat. Commun., 2023, 14, 1106. [92] Nazir M. A., Najam T., Ullah S., Hossain I., Javed M. S., Naseer M., Rehman A. U., Shah S. S. A., EcoEnergy, 2024, 2, 505. [93] Sun Y., Han L., Strasser P., Chem. Soc. Rev., 2020, 49, 6605. [94] Daliran S., Oveisi A. R., Dhakshinamoorthy A., Garcia H., ACS Appl. Mater. Interfaces, 2024, 16, 50096. [95] Valentini C., Montes-Garcia V., Pakulski D., Samori P., Ciesielski A., Small, 2025, 21, e2410544. [96] Song Z., Xu Y., Zhang M., Zhu W., Yang X., Hao D., Li Q., J. Colloid. Interf. Sci., 2025, 677, 346. [97] Manzoor S., Younis M. A., Yao Y., Tariq Q.-U.-N., Zhang B., Tian B., Yan L., Qiu C., Coordin. Chem. Rev., 2025, 541, 216840. [98] Jin Y. H., Li M. H., Yang Y. W., Adv. Sci. (Weinh.), 2025, 12, e2412600. [99] Guo Y., Yan J., Chen Z., Duan C., Li C., Li Y., Kawi S., Journal of Environmental Chemical Engineering, 2024, 12, 112481. [100] Alzahrani A. Y. A., Adimule V., Keri R., Nandi S., Sunitha D. V., Moussa S. B., Kannan K., Nesargi S., Barmavatu P., Journal of Photochemistry and Photobiology A: Chemistry, 2025, 116980. [101] Ai S., Wu T., Wang M., Cui Z., Zhou H., Xu Y., Yang M., Huang Q., Tian D., Applied Catalysis B: Environment and Energy, 2026, 380, 125786. [102] Guo Z., Yang S., Liu M., Xu Q., Zeng G., EcoEnergy, 2024, 2, 192. [103] Ghosh R., Paesani F., Chem. Sci., 2021, 12, 8373. [104] Huang Y., Yu Z., Zhang Q., Luo F., Sci. China Mater., 2023, 66, 2339. [105] Li C., Ma Y., Liu H., Tao L., Ren Y., Chen X., Li H., Yang Q., Chinese J. Catal., 2020, 41, 1288. [106] Li C., Wang S., Liu Y., Huang X., Zhuang Y., Wu S., Wang Y., Wen N., Wu K., Ding Z., Long J., Chinese J. Catal., 2024, 63, 164. [107] Li J., Zhang Z., Jia J., Liu X., Chem. Res. Chinese Universities, 2022, 38, 275. [108] Li Y.-L., Huang S.-L., Yang G.-Y., Sci. China. Chem., 2024, 67, 3719. [109] Liang Z., Shen R., Zhang P., Li Y., Li N., Li X., Chinese J. Catal., 2022, 43, 2581. [110] Liao Q., Xu W., Huang X., Ke C., Zhang Q., Xi K., Xie J., Sci. China Chem., 2020, 63, 707. [111] Lin Z., Xie W., Zhu M., Wang C., Guo J., Chinese J. Catal., 2024, 64, 87. [112] Wang M., Wang M., Lin H. H., Ballabio M., Zhong H., Bonn M., Zhou S., Heine T., Canovas E., Dong R., Feng X., J. Am. Chem. Soc., 2020, 142, 21622. [113] Yang C., Maenosono S., Duan J., Zhang X., Chemnanomat, 2019, 5, 957. [114] Mao S., Zhang Y., Wang Y., Zhang S., Liu S., Chen W., Zhou J., Li X., Adv. Mater., 2025, 37, e2507668. [115] Huang P., Peng Y. Y., Wang X. H., Li R. H., Qin M. H., Zhang M., Wang S. M., Lu M., Li S. L., Lan Y. Q., Adv. Mater., 2025, e07849. [116] Li L., Lv X., Xue Y., Shao H., Zheng G., Han Q., Angew. Chem. Int. Ed., 2024, 63, e202320218. [117] Guo L., Gong L., Yang Y., Huang Z., Liu X., Luo F., Angew. Chem. Int. Ed., 2025, 64, e202414658. [118] Hou Y., Zhou P., Liu F., Lu Y., Tan H., Li Z., Tong M., Ni J., Angew. Chem. Int. Ed., 2024, 63, e202318562. [119] Zhao W., Li J., Li K., Jiao J., Liu S., Yang J., Frogley M. D., Peng Y., Wang Y., Wang H., Zhang S., Jing L., Liu C., Yang S., Kang X., Han B., Angew. Chem. Int. Ed., 2025, 64, e202510550. [120] Huang K. H., Bai J. X., Shen R. C., Li X. Z., Qin C. C., Zhang P., Li X., Adv. Funct. Mater., 2023, 33, 2307300. [121] Shen R., Huang C., Hao L., Liang G., Zhang P., Yue Q., Li X., Nat. Commun., 2025, 16, 2457. [122] Sun H. H., Zhou Z. B., Fu Y., Qi Q. Y., Wang Z. X., Xu S., Zhao X., Angew. Chem. Int. Ed., 2024, 63, e202409250. [123] Guan X., Qian Y., Zhang X., Jiang H. L., Angew. Chem. Int. Ed., 2023, 62, e202306135. [124] Hao F., Yang C., Lv X., Chen F., Wang S., Zheng G., Han Q., Angew. Chem. Int. Ed., 2023, 62, e202315456. [125] Kang C., Zhang Z., Xi S., Li H., Usadi A. K., Calabro D. C., Baugh L. S., Wang Y., Zhao D., P. Natl. Acad. Sci. USA, 2023, 120, e2217081120. [126] Zhang J., Li X., Hu H., Huang H., Li H., Sun X., Ma T., Nat. Commun., 2024, 15, 9576. [127] Lin Y., Zou J., Wu X., Tong S., Niu Q., He S., Luo S., Yang C., Nano Lett., 2024, 24, 6302. [128] Zhang B., Li H., Kang Y., Yang K., Liu H., Zhao Y., Qiao S., Adv. Funct. Mater., 2025, 35, 2416958. [129] Wu X., Han X., Liu Y., Liu Y., Cui Y., J. Am. Chem. Soc., 2018, 140, 16124. [130] Yi L., Gao Y., Yan C., Liu Y., Luo S., Wang T., Liu L., Deng H., J. Am. Chem. Soc., 2025, 147, 32145. [131] Pelkowski C. E., Natraj A., Malliakas C. D., Burke D. W., Bardot M. I., Wang Z., Li H., Dichtel W. R., J. Am. Chem. Soc., 2023, 145, 21798. [132] Putz A. M., Terban M. W., Bette S., Haase F., Dinnebier R. E., Lotsch B. V., Chem. Sci., 2020, 11, 12647. [133] Stegbauer L., Schwinghammer K., Lotsch B.V., Chem. Sci., 2014, 5, 2789. [134] Yang S. Z., Hu W. H., Zhang X., He P. L., Pattengale B., Liu C. M., Cendejas M., Hermans I., Zhang X. Y., Zhang J., Huang J. E., J. Am. Chem. Soc., 2018, 140, 14614. [135] Kou M., Wang Y., Xu Y., Ye L., Huang Y., Jia B., Li H., Ren J., Deng Y., Chen J., Zhou Y., Lei K., Wang L., Liu W., Huang H., Ma T., Angew. Chem. Int. Ed., 2022, 61, e202200413. [136] Cheng J., Wu Y., Zhang W., Zhang J., Wang L., Zhou M., Fan F., Wu X., Xu H., Adv. Mater., 2024, 36, e2305313. [137] Hisatomi T., Domen K., Nat. Catal, 2019, 2, 387. [138] Yang J.-L., He Y.-L., Ren H., Zhong H.-L., Lin J.-S., Yang W.-M., Li M.-D., Yang Z.-L., Zhang H., Tian Z.-Q., Li J.-F., ACS Catal., 2021, 11, 5047. [139] Chen X., Li Y., Pan X., Cortie D., Huang X., Yi Z., Nat. Commun., 2016, 7, 12273. [140] Wang Q., Hisatomi T., Jia Q., Tokudome H., Zhong M., Wang C., Pan Z., Takata T., Nakabayashi M., Shibata N., Li Y., Sharp I. D., Kudo A., Yamada T., Domen K., Nat. Mater., 2016, 15, 611. [141] Zhao Z., Chen X., Li B., Zhao S., Niu L., Zhang Z., Chen Y., Adv. Sci. (Weinh.), 2022, 9, e2203832. [142] Bai J., Shen R., Liang G., Qin C., Xu D., Hu H., Li X., Chinese J. Catal., 2024, 59, 225. [143] Dong P., Zhang A., Cheng T., Pan J., Song J., Zhang L., Guan R., Xi X., Zhang J., Chinese J. Catal., 2022, 43, 2592. [144] Hao L., Shen R., Qin C., Li N., Hu H., Liang G., Li X., Sci. China Mater., 2024, 67, 504. [145] Huang H., Lin Q., Niu Q., Ning J., Li L., Bi J., Yu Y., Chinese J. Catal., 2024, 60, 201. [146] Lin W., Lin F. W., Lin J., Xiao Z. W., Yuan D. Q., Wang Y. B., J. Am. Chem. Soc., 2024, 146, 16229. [147] Fu P., Chen C. L., Wu C., Meng B., Yue Q. H., Chen T., Yin W., Chi X., Yu X. J., Li R. T., Wang Y., Zhang Y. F., Luo W., Liu X. L., Han Y., Wang J., Xi S. B., Zhou Y., Angew. Chem. Int. Ed., 2025, 64, e202415202. [148] Song W., Chen S. D., Ren X. T., Su X., Song C. P., Li Y. S., Chen L., Bai F., Small, 2025, 21, e2409117. [149] Ai L.-Y., Wang Q., Chen X.-W., Jiang G.-F., Aggregate, 2024, 5, e582. [150] Chen D., Chen W., Wu Y., Wang L., Wu X., Xu H., Chen L., Angew. Chem. Int. Ed., 2023, 62, e202217479. [151] Hao X., Lan Y., Gao S., Yang X., Cao R., Sci. China Mater., 2025, 68, 1145. [152] Yang J., Acharjya A., Ye M.-Y., Rabeah J., Li S., Kochovski Z., Youk S., Roeser J., Grueneberg J., Penschke C., Schwarze M., Wang T., Lu Y., van de Krol R., Oschatz M., Schomaecker R., Saalfrank P., Thomas A., Angew. Chem. Int. Ed., 2021, 60, 19797. [153] Putta Rangappa A., Praveen Kumar D., Do K.H., Wang J., Zhang Y., Kim T. K., Adv. Sci. (Weinh.), 2023, 10, e2300073. [154] Gao R., Shen R., Huang C., Huang K., Liang G., Zhang P., Li X., Angew. Chem. Int. Ed., 2025, 64, e202414229. [155] Li X. A., Liang Z. Z., Zhou Y. C., Huang J. F., Wang X. L., Xiao L. M., Liu J. M., Aggregate, 2023, 5, e442. [156] Ran L., Li Z., Ran B., Cao J., Zhao Y., Shao T., Song Y., Leung M. K. H., Sun L., Hou J., J. Am. Chem. Soc., 2022, 144, 17097. [157] Wang L., Mao J., Huang G., Zhang Y., Huang J., She H., Liu C., Liu H., Wang Q., Chem. Eng. J., 2022, 446, 137011. |
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