High sulfur-doped hard carbon anode from polystyrene with enhanced capacity and stability for potassium-ion storage

Author(s):  
Xiaoyan Chen ◽  
Xin-Bing Cheng ◽  
Zhigang Liu
Small ◽  
2021 ◽  
pp. 2104296
Author(s):  
Shaokun Chong ◽  
Lingling Yuan ◽  
Ting Li ◽  
Chengyong Shu ◽  
Shuangyan Qiao ◽  
...  

2019 ◽  
Vol 55 (94) ◽  
pp. 14147-14150 ◽  
Author(s):  
Rui Zhang ◽  
Haibo Li ◽  
Rui Li ◽  
Denghu Wei ◽  
Wenjun Kang ◽  
...  

The oxygen-containing species in melamine foam carbons are chemically regulated. The optimized carbon anode shows an enhanced potassium-ion storage performance in terms of reversible capacity, rate capability, and long-term cycling stability.


2020 ◽  
Vol 3 (9) ◽  
pp. 953-960 ◽  
Author(s):  
Ashok Kumar Nanjundan ◽  
Rohit Ranganathan Gaddam ◽  
Amir H. Farokh Niaei ◽  
Pratheep K. Annamalai ◽  
Deepak P. Dubal ◽  
...  

InfoMat ◽  
2022 ◽  
Author(s):  
Hang Lei ◽  
Jinliang Li ◽  
Xiyun Zhang ◽  
Liang Ma ◽  
Zhong Ji ◽  
...  

Author(s):  
Ruling Huang ◽  
Xixue Zhang ◽  
Zexi Qu ◽  
Xiaodong Zhang ◽  
Jiao Lin ◽  
...  

Heteroatom-doping had been demonstrated to effectively improve the capacitive energy storage of hard carbon in potassium ion batteries (KIBs). However, the external defects introduced during doping process are responsible to...


2021 ◽  
Vol 33 (5) ◽  
pp. 055401
Author(s):  
Shuijiao Chen ◽  
Kejian Tang ◽  
Fei Song ◽  
Zhichao Liu ◽  
Nan Zhang ◽  
...  

Abstract Hard carbon is the most attractive anode material for electrochemical sodium/potassium-ion storage. The preparation of hard carbon spheres directly from the broad sources of biomass is of great interest but barely reported. Herein, we developed a simple two-step hydrothermal method to construct porous carbon microspheres directly from the original waste biomass of camellia shells. The porous carbon microspheres have high specific capacities of 250 mAh g−1 and 264.5 mAh g−1 at a current density of 100 mA g−1 for sodium-ion batteries and potassium-ion batteries, respectively. And it has excellent cycle stability for sodium ions and potassium ions outperforming most reported hard carbons, which is mainly attributed to the microporous structure and spherical morphology. The work paves a way to prepare porous hard carbon spheres directly from biomass for alkali metal-ion batteries.


2021 ◽  
Vol 13 (40) ◽  
pp. 47728-47739
Author(s):  
Wentao Deng ◽  
Yongjie Cao ◽  
Guangming Yuan ◽  
Gonggang Liu ◽  
Xiang Zhang ◽  
...  

2020 ◽  
Vol 3 (9) ◽  
pp. 791-791
Author(s):  
Ashok Kumar Nanjundan ◽  
Rohit Ranganathan Gaddam ◽  
Amir H. Farokh Niaei ◽  
Pratheep K. Annamalai ◽  
Deepak P. Dubal ◽  
...  

2021 ◽  
Vol 13 (1) ◽  
Author(s):  
Jinlin Yang ◽  
Xiaowei Wang ◽  
Wenrui Dai ◽  
Xu Lian ◽  
Xinhang Cui ◽  
...  

Highlights Hard-carbon anode dominated with ultra-micropores (< 0.5 nm) was synthesized for sodium-ion batteries via a molten diffusion–carbonization method. The ultra-micropores dominated carbon anode displays an enhanced capacity, which originates from the extra sodium-ion storage sites of the designed ultra-micropores. The thick electrode (~ 19 mg cm−2) with a high areal capacity of 6.14 mAh cm−2 displays an ultrahigh cycling stability and an outstanding low-temperature performance. Abstract Pore structure of hard carbon has a fundamental influence on the electrochemical properties in sodium-ion batteries (SIBs). Ultra-micropores (< 0.5 nm) of hard carbon can function as ionic sieves to reduce the diffusion of slovated Na+ but allow the entrance of naked Na+ into the pores, which can reduce the interficial contact between the electrolyte and the inner pores without sacrificing the fast diffusion kinetics. Herein, a molten diffusion–carbonization method is proposed to transform the micropores (> 1 nm) inside carbon into ultra-micropores (< 0.5 nm). Consequently, the designed carbon anode displays an enhanced capacity of 346 mAh g−1 at 30 mA g−1 with a high ICE value of ~ 80.6% and most of the capacity (~ 90%) is below 1 V. Moreover, the high-loading electrode (~ 19 mg cm−2) exhibits a good temperature endurance with a high areal capacity of 6.14 mAh cm−2 at 25 °C and 5.32 mAh cm−2 at − 20 °C. Based on the in situ X-ray diffraction and ex situ solid-state nuclear magnetic resonance results, the designed ultra-micropores provide the extra Na+ storage sites, which mainly contributes to the enhanced capacity. This proposed strategy shows a good potential for the development of high-performance SIBs.


2019 ◽  
Vol 43 (26) ◽  
pp. 10449-10457 ◽  
Author(s):  
Danting Li ◽  
Yi Zhu ◽  
Enze Xu ◽  
Hui Wang ◽  
Taotao Chen ◽  
...  

Bio-carbon anode materials fabricated from coir fiber, featuring rich nanopore-decorated side-by-side holes, exhibit superior capacity and excellent cycling performance.


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