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磷掺杂多孔石墨烯的激光诱导形成

formation of phosphorus-doped porous graphene laser induction.

作者信息

Yang Weiwei, Liu Ying, Li Qiushi, Wei Jie, Li Xueli, Zhang Yi, Liu Jiping

机构信息

School of Materials Science and Engineering, Beijing Institute of Technology Beijing 100081 China

CAS Key Laboratory of Space Manufacturing Technology, Technology and Engineering Center for Space Utilization, Chinese Academy of Sciences Beijing 100094 China.

出版信息

RSC Adv. 2020 Jun 23;10(40):23953-23958. doi: 10.1039/d0ra03363d. eCollection 2020 Jun 19.

Abstract

Heteroatom-doped graphene exhibits high energy storage performance when used as an active electrode, and which can been applied to various advanced applications, but challenging in synthesis, , hazardous chemical reagents usage, difficult processing steps, and energy consumption. We demonstrated a ready, rapid and normal method for generating phosphorus-doped graphene (LIPG) using a CO laser on polyimide (PI) substrate mixed with ammonium polyphosphate (APP) in ambient air. LIPG was approved and successfully synthesized TEM, SEM, XRD and Raman observations. Moreover, we discussed the flame-retardant performance of APP for synthesizing LIPG on PI substrates, increasing the degree of graphitization. Furthermore, LIPG prepared using supercapacitors as an electrode showed good electrochemical performance. Remarkably, the highest specific capacitance of porous LIPG is about 206 F g at the current density of 0.025 A g, the value is about 2 times higher than those undoped laser induced graphene (LIG). Such great performance of the LIPG electrode material is attributed to the formation of a hierarchical porous structure, phosphorus atom doping, and manufacturing deficiency. Hence, LIPG showed considerable potential in the electrochemical application field. The proposed preparation of LIPG is best suited for synthesis and applicable to the doping of other heteroatoms doped into graphene.

摘要

杂原子掺杂的石墨烯用作活性电极时表现出高储能性能,可应用于各种先进应用,但在合成、使用危险化学试剂、加工步骤困难和能源消耗方面存在挑战。我们展示了一种简便、快速且常规的方法,即在环境空气中使用CO激光在聚酰亚胺(PI)基板上与聚磷酸铵(APP)混合来制备磷掺杂石墨烯(LIPG)。通过透射电子显微镜(TEM)、扫描电子显微镜(SEM)、X射线衍射(XRD)和拉曼光谱观察证实成功合成了LIPG。此外,我们讨论了APP在PI基板上合成LIPG时的阻燃性能,提高了石墨化程度。此外,以超级电容器为电极制备的LIPG表现出良好的电化学性能。值得注意的是,在电流密度为0.025 A g时,多孔LIPG的最高比电容约为206 F g,该值比未掺杂的激光诱导石墨烯(LIG)高出约2倍。LIPG电极材料的如此优异性能归因于分级多孔结构的形成、磷原子掺杂和制造缺陷。因此,LIPG在电化学应用领域显示出相当大的潜力。所提出的LIPG制备方法最适合合成,也适用于其他掺杂到石墨烯中的杂原子的掺杂。

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