coal, and graphite) every time, the social energy system always brings a great leap and promotes the change of life. [5][6][7][8] Currently, the scientific community is still eager for advanced carbon-based materials to achieve higher efficiency and better utilization of green energy. [9][10][11][12][13] To date, various carbonaceous materials (e.g., graphene, [14][15][16][17][18] carbon nanotubes, [19,20] C 60 , [21] carbon quantum dots [22] and carbon micro/nanofibers [23] ) and their composites have been explored and prepared by different methods including chemical vapor deposition, [23,24] chemical or electrochemical exfoliation, [25] and electrospinning, [26,27] but it is still a great challenge to fabricate versatile advanced carbon-based composites with controlled morphology, adjustable dimension and tunable composition by one-step synthesis process in large scale.The traditional preparation methods (e.g., direct annealing method, chemical vapor deposition (CVD) method, a sputtering method, hydrothermal/ solvothermal methods) for carbon and their composites are always multi-steps, which make it very difficult to precisely control morphology, dimension, and composition at the same time. [28][29][30] Meanwhile, limited by the equipment, the above methods are still suffering from high product cost and low yield, which further hinder their largescale commercial applications. As for the biomass-derived carbon, it has the merits of low-cost, easy reproduction, and Carbon materials play a critical role in the advancement of electrochemical energy storage and conversion. Currently, it is still a great challenge to fabricate versatile carbon-based composites with controlled morphology, adjustable dimension, and tunable composition by a one-step synthesis process. In this work, a powerful one-step maltose-based puffing carbonization technology is reported to construct multiscale carbon-based composites on large scale. A quantity of composite examples (e.g., carbon/metal oxides, carbon/metal nitrides, carbon/metal carbides, carbon/metal sulfides, carbon/metals, metal/semiconductors, carbon/carbons) are prepared and demonstrated with required properties. These well-designed composites show advantages of large porosity, hierarchical porous structure, high conductivity, tunable components, and proportion. The formation mechanism of versatile carbon composites is attributed to the puffing-carbonization of maltose plus in situ carbothermal reaction between maltose and precursors. As a representative example, Li 2 S is in situ implanted into a hierarchical porous cross-linked puffed carbon (CPC) matrix to verify its application in lithium-sulfur batteries. The designed S-doped CPC/Li 2 S cathode shows superior electrochemical performance with higher rate capacity (621 mAh g -1 at 2 C), smaller polarization and enhanced long-term cycles as compared to other counterparts. The research provides a general way for the construction of multifunctional component-adjustable carbon composites for advanced energy storage and conversi...