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Heteroatomic interface engineering in MOFderived carbon heterostructures with built-in electric-field effects for high performance Al-ion batteries

机译:MOF衍生的碳异质结构的杂原子界面工程,具有内置电场效应,适用于高性能Al离子电池

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摘要

Confronted with challenges in promoting fast AlxCly- anion diffusion and intercalation for aluminum ion batteries (AIBs), it is of vital importance to rationally design gradient hetero-interfaces with an ideal built in interfacial electric potential to enhance charge diffusion and transfer kinetics. Herein, we demonstrate an effective strategy to realize accurate tuning gradient heteroatom N and P doping in MOF-derived porous carbon in C@N-C@N,P-C graded heterostructures. Importantly, gradient N and P doping could modify the electronic structure of MOF-derived carbon as certified by DFT calculations, and lead to charge redistribution to induce graded energy levels and a built-in electric field in the C@N-C@N,P-C graded heteroatomic interface, thus boosting interfacial charge transfer and accelerating reaction kinetics. Furthermore, the large surface area and high porosity of C@N-C@N,P-C graded heterostructures could efficiently absorb electrolyte and enhance anion transport kinetics. As expected, the designed gradiently N,P-doped C@N-C@N,P-C heterostructure with a built-in interfacial electric field could facilitate electron and AlCI(4)(- )anion transfer spontaneously between N,P-C, N-C and C gradient components, exhibiting a superior capacity of 98 mA h g(-1) at a high current density of 5 A g(-1) after 2500 cycles. This strategy reveals new insights about the gradient energy band for designing high-performance electrochemical energy storage devices.
机译:面对促进铝离子电池(AIB)快速AlxCly阴离子扩散和嵌入的挑战,合理设计具有理想界面电位的梯度异质界面以增强电荷扩散和传输动力学至关重要。在这里,我们展示了一种有效的策略,可在C @ N-C @ N,P-C分级异质结构中,在MOF衍生的多孔碳中实现精确调谐梯度杂原子N和P掺杂。重要的是,梯度N和P掺杂可通过DFT计算证明,改变MOF衍生碳的电子结构,并导致电荷重新分布,从而在C @ NC @ N,PC分级的C @ NC @ N中产生感应的能级和内置电场杂原子界面,从而促进界面电荷转移并加速反应动力学。此外,C @ N-C @ N,P-C梯度异质结构的大表面积和高孔隙率可以有效吸收电解质并增强阴离子传输动力学。如预期的那样,设计的具有内置界面电场的梯度N,P掺杂C @ NC @ N,PC异质结构可以促进电子和AlCl(4)(-)阴离子自发在N,PC,NC和C梯度之间转移2500次循环后,在5 A g(-1)的高电流密度下展现出98 mA hg(-1)的卓越容量。该策略揭示了有关设计高性能电化学能量存储设备的梯度能带的新见解。

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