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               2.       Zhang, L.; Bai, R.; Lin, J.; et al. Deprotonated 2-thiolimidazole serves as a metal-free electrocatalyst for selective acetylene
                   hydrogenation. Nat. Chem. 2024, 16, 893-900.  DOI
               3.       An, S.; Zhao, Z. H.; Bu, J.; et al. Multi-functional formaldehyde-nitrate batteries for wastewater refining, electricity generation, and
                   production of ammonia and formate. Angew. Chem. Int. Ed. Engl. 2024, 63, e202318989.  DOI
               4.       Bu, J.; Chang, S.; Li, J.; et al. Highly selective electrocatalytic alkynol semi-hydrogenation for continuous production of alkenols. Nat.
                   Commun. 2023, 14, 1533.  DOI  PubMed  PMC
               5.       Bu, J.; Liu, Z.; Ma, W.; et al. Selective electrocatalytic semihydrogenation of acetylene impurities for the production of polymer-grade
                   ethylene. Nat. Catal. 2021, 4, 557-64.  DOI
               6.       Goodenough, J. B.; Park, K. S. The Li-ion rechargeable battery: a perspective. J. Am. Chem. Soc. 2013, 135, 1167-76.  DOI  PubMed
               7.       Chen, Y.; Kang, Y.; Zhao, Y.; et al. A review of lithium-ion battery safety concerns: the issues, strategies, and testing standards. J.
                   Energy. Chem. 2021, 59, 83-99.  DOI
               8.       Xiao, J.; Shi, F.; Glossmann, T.; Burnett, C.; Liu, Z. From laboratory innovations to materials manufacturing for lithium-based
                   batteries. Nat. Energy. 2023, 8, 329-39.  DOI
               9.       Yuan, K.; Tu, T.; Shen, C.; et al. Self-ball milling strategy to construct high-entropy oxide coated LiNi Co Mn O  with enhanced
                                                                                      0.8  0.1  0.1  2
                   electrochemical performance. J. Adv. Ceram. 2022, 11, 882-92.  DOI
               10.      Ding, X.; Zhou, Q.; Li, X.; Xiong, X. Fast-charging anodes for lithium ion batteries: progress and challenges. Chem. Commun. 2024,
                   60, 2472-88.  DOI  PubMed
               11.      Kou, P.; Zhang, Z.; Wang, Z.; et al. Opportunities and challenges of layered lithium-rich manganese-based cathode materials for high
                   energy density lithium-ion batteries. Energy. Fuels. 2023, 37, 18243-65.  DOI
               12.      Miao, N.; Gong, Y.; Zhang, H.; et al. Discovery of two-dimensional hexagonal MBene HfBO and exploration on its potential for
                   lithium-ion storage. Angew. Chem. Int. Ed. Engl. 2023, 62, e202308436.  DOI
               13.      Miao, N.; Yan, Y.; Wang, J. A rising layered boride family for energy and catalysis applications: novel hexagonal MAB phases and
                   MBenes. ChemSusChem 2024, 17, e202400229.  DOI
               14.      Shen, Q.; He, Y.; Wang, J. Biomass-derived two-dimensional N,O-doped carbon with embedded binary-metal nanoparticles enables
                   dendrite-free potassium-metal anodes. J. Mater. Chem. A. 2023, 11, 9829-39.  DOI
               15.      Wang, J.; Ye, T. N.; Gong, Y.; et al. Discovery of hexagonal ternary phase Ti InB  and its evolution to layered boride TiB. Nat.
                                                                        2  2
                   Commun. 2019, 10, 2284.  DOI  PubMed  PMC
               16.      Shen, Q.; Shi, Y.; He, Y.; Wang, J. Defect engineering of hexagonal MAB phase Ti InB  as anode of lithium-ion battery with excellent
                                                                            2
                                                                         2
                   cycling stability. Adv. Sci. 2024, 11, e2308589.  DOI  PubMed  PMC
               17.      Miao, N.; Wang, J.; Gong, Y.; et al. Computational prediction of boron-based MAX phases and MXene derivatives. Chem. Mater.
                   2020, 32, 6947-57.  DOI
               18.      Jang, I.; Go, W.; Song, B.; Park, H.; Kang, Y. C.; Chun, J. Improving ionic conductivity of von-Alpen-type NASICON ceramic
                   electrolytes via magnesium doping. J. Adv. Ceram. 2023, 12, 1058-66.  DOI
               19.      Liu, M.; Wu, F.; Gong, Y.; et al. Interfacial-catalysis-enabled layered and inorganic-rich SEI on hard carbon anodes in ester
                   electrolytes for sodium-ion batteries. Adv. Mater. 2023, 35, e2300002.  DOI
               20.      Kate, R. S.; Jadhav, H. S.; Chothe, U. P.; et al. Critical review of the recent progress and challenges of polyanion Na V (PO )  cathode
                                                                                                2
                                                                                                   4 3
                                                                                              3
                   materials in rechargeable sodium-ion batteries. J. Mater. Chem. A. 2024, 12, 7418-51.  DOI
               21.      Wang, L.; Tian, H.; Yao, X.; Cai, Y.; Gao, Z.; Su, Z. Research progress and modification measures of anode and cathode materials for
                   sodium-ion batteries. ChemElectroChem 2024, 11, e202300414.  DOI
               22.      Eftekhari, A.; Jian, Z.; Ji, X. Potassium secondary batteries. ACS. Appl. Mater. Interfaces. 2017, 9, 4404-19.  DOI  PubMed
               23.      Zhang, W.; Liu, Y.; Guo, Z. Approaching high-performance potassium-ion batteries via advanced design strategies and engineering.
                   Sci. Adv. 2019, 5, eaav7412.  DOI  PubMed  PMC
               24.      Han, J.; Li, G. N.; Liu, F.; et al. Investigation of K V (PO ) /C nanocomposites as high-potential cathode materials for potassium-ion
                                                    3  2  4 3
                   batteries. Chem. Commun. 2017, 53, 1805-8.  DOI
               25.      Chihara, K.; Katogi, A.; Kubota, K.; Komaba, S. KVPO F and KVOPO  toward 4 volt-class potassium-ion batteries. Chem. Commun.
                                                        4
                                                                  4
                   2017, 53, 5208-11.  DOI
               26.      Kim, H.; Seo, D. H.; Kim, J. C.; et al. Investigation of potassium storage in layered P3-type K MnO  cathode. Adv. Mater. 2017, 29.
                                                                                     2
                                                                                0.5
                   DOI
               27.      Kim, H.; Kim, J. C.; Bo, S.; Shi, T.; Kwon, D.; Ceder, G. K-ion batteries based on a P2-type K CoO  cathode. Adv. Energy. Mater.
                                                                                 0.6  2
                   2017, 7, 1700098.  DOI
               28.      Yang, Z.; Li, W.; Zhang, G.; et al. Constructing Sb-O-C bond to improve the alloying reaction reversibility of free-standing Sb Se
                                                                                                       2  3
                   nanorods for potassium-ion batteries. Nano. Energy. 2022, 93, 106764.  DOI
               29.      Li, W.; Yang, Z.; Zuo, J.; Wang, J.; Li, X. Emerging carbon-based flexible anodes for potassium-ion batteries: progress and
                   opportunities. Front. Chem. 2022, 10, 1002540.  DOI  PubMed  PMC
               30.      Kim, H.; Kim, J. C. Opportunities and challenges in cathode development for non-lithium-ion batteries. eScience 2024, 4, 100232.
                   DOI
               31.      Liu, X.; Chu, J.; Wang, Z.; et al. Design and optimization of carbon materials as anodes for advanced potassium-ion storage. Rare.
                   Met. 2024, 43, 5516-48.  DOI
               32.      Jonderian, A.; Jia, S.; Yoon, G.; et al. Accelerated development of high voltage Li-ion cathodes. Adv. Energy. Mater. 2022, 12,
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