Scissor g-C3N4 for high-density loading of catalyst domains in mesoporous thin-layer conductive network for durable Li-S batteries

C. Lai, Xuejun Zhou, Meng Lei, Wenlong Liu, X. Mu, Chilin Li
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Abstract

The application of Li-S batteries (LSBs) is hindered by the undesired shuttle effect that leads to the fast consumption of active materials. The separator modification by using the carbon matrix with embedded metal nitride as catalyst can ease the problem. However, the previous synthesis processes of metal nitride catalysts are difficult to achieve a balance between their high-density production, homogenous distribution and excellent electronic contact with conductive substrates. Herein, we propose a bond scissoring strategy based on g-C3N4 to prepare NbN catalyst domains with high-density loading uniformly embedded in mesoporous thin-layer conductive carbon network (NbN/C) for durable LSBs. The molten salt reaction process is favorable for the diffusion of Nb cations into a porous g-C3N4 precursor to break the C-N bond and immobilize the N element. The residual monolithic carbon framework with space confinement effect limits the irregular growth and stacking of NbN precipitates. The NbN catalytic domains exhibit a strong adsorption effect on lithium polysulfides (LiPSs) and accelerate their liquid-solid conversion reactions. The LSBs utilizing an NbN/C-modified separator show superior cycling and rate performance, with a high-capacity retention of 72.7% after 1,000 cycles under 2 C and a high areal capacity of ~7.08 mA h cm-2 under a high sulfur loading of 6.6 mg cm-2. This g-C3N4-assisted strategy opens a new gate for the design of an integrated catalysis-conduction network for high-performance LSBs.
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剪刀g-C3N4在耐用Li-S电池介孔薄层导电网络中高密度负载催化剂域
锂离子电池(LSBs)的应用受阻于不希望的穿梭效应,导致活性物质的快速消耗。采用嵌入金属氮化物的碳基体作为催化剂对分离器进行改性可以缓解这一问题。然而,以往的金属氮化物催化剂的合成工艺很难在其高密度生产、均匀分布和与导电衬底良好的电子接触之间取得平衡。在此,我们提出了一种基于g-C3N4的键剪策略,以制备高密度负载均匀嵌入介孔薄层导电碳网络(NbN/C)的NbN催化剂结构域。熔盐反应过程有利于Nb阳离子扩散到多孔g-C3N4前驱体中,破坏C-N键,固定N元素。具有空间约束效应的残余单片碳骨架限制了NbN析出物的不规则生长和堆积。NbN催化结构域对锂多硫化物(LiPSs)具有较强的吸附作用,加速了其液固转化反应。采用NbN/C改性分离器制备的lsb具有优良的循环和倍率性能,在2℃条件下循环1000次后的容量保留率高达72.7%,在高硫负荷为6.6 mg cm-2时的面积容量高达~7.08 mA h cm-2。这种g- c3n4辅助策略为高性能lsb集成催化传导网络的设计打开了新的大门。
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