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Ultrafine MoP Nanoparticle Splotched Nitrogen‐Doped Carbon Nanosheets Enabling High‐Performance 3D‐Printed Potassium‐Ion Hybrid Capacitors

机译:Ultrafine Mop纳米颗粒分子氮掺杂碳纳米液可实现高性能3D印刷钾离子混合电容器

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摘要

Size engineering is deemed to be an adoptable method to boost the electrochemical properties of potassium‐ion storage; however, it remains a critical challenge to significantly reduce the nanoparticle size without compromising the uniformity. In this work, a series of MoP nanoparticle splotched nitrogen‐doped carbon nanosheets (MoP@NC) is synthesized. Due to the coordinate and hydrogen bonds in the water‐soluble polyacrylamide hydrogel, MoP is uniformly confined in a 3D porous NC to form ultrafine nanoparticles which facilitate the extreme exposure of abundant three‐phase boundaries (MoP, NC, and electrolyte) for ionic binding and storage. Consequently, MoP@NC‐1 delivers an excellent capacity performance (256.1 mAh g−1 at 0.1 A g−1) and long‐term cycling durability (89.9% capacitance retention after 800 cycles). It is further confirmed via density functional theory calculations that the smaller the MoP nanoparticle, the larger the three‐phase boundary achieved for favoring competitive binding energy toward potassium ions. Finally, MoP@NC‐1 is applied as highly electroactive additive for 3D printing ink to fabricate 3D‐printed potassium‐ion hybrid capacitors, which delivers high gravimetric energy/power density of 69.7 Wh kg−1/2041.6 W kg−1, as well as favorable areal energy/power density of 0.34 mWh cm−2/9.97 mW cm−2.
机译:尺寸工程被认为是提高钾离子储存电化学性能的可采用方法;然而,在不影响均匀性的情况下显着降低纳米粒子尺寸仍然是一个关键挑战。在这项工作中,合成了一系列摩普纳米粒子分片氮掺杂碳纳米液(MOP @ NC)。由于水溶性聚丙烯酰胺水凝胶中的坐标和氢键,垫子均匀地限制在3D多孔Nc中以形成超细纳米颗粒,其促进离子结合的丰富三相边界(MOP,NC和电解质)的极端暴露和储存。因此,MOP @ NC-1提供了出色的容量性能(256.1Mah G-1,在0.1AG-1时),长期循环耐久性(800次循环后的电容保留89.9%)。通过密度函数理论计算进一步证实,即摩普纳米粒子越小,较越大的三相边界,使竞争对重能量达到钾离子。最后,MOP @ NC-1用作3D印刷油墨的高电活性添加剂,以制造3D印刷的钾离子混合电容器,可提供69.7WH-1 / 2041.6 W kg-1的高重量能量/功率密度。良好的面积能量/功率密度为0.34 mwh cm-2 / 9.97 mw cm-2。

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