AG百家乐大转轮-AG百家乐导航_怎么看百家乐走势_全讯网官网 (中国)·官方网站

In the Media

[Phys.org] Adding transparency to graphene paper improves supercapacitor capacitance

Source: phys.org/news/2015-04-adding-transparency-graphene-paper-supercapacitor.html
Written by: Lisa Zyga


(a, b) Photographs and (c) an SEM micrograph of the new material: flexible, freestanding, and transparent graphene paper. In (b), the Sun Yat-sen University logo is clearly seen behind the transparent graphene sheet. Credit: Na Li, et al. @2015 American Chemical Society
 
(Phys.org)—For the first time, scientists have integrated transparency into freestanding, flexible graphene paper (FFT-GP), and demonstrated that the new material can greatly improve the performance of supercapacitors.

"Freestanding flexible and transparent graphene paper was synthesized for the first time, and the capacitance was improved by nearly 1000-fold compared with that of the laminated or wrinkled chemical vapor deposition graphene-film-based supercapacitors," Chengxin Wang, Professor at Sun Yat-sen (Zhongshan) University in Guangzhou, China, told Phys.org. "The capacitance for the supercapacitors based on FFT-GP is also at least ten times greater than previously reported values for transparent and flexible supercapacitors based on pure carbon materials. However, some carbon-based nontransparent supercapacitors still perform better than the FFT-GP-based transparent supercapacitor."

Wang and his coauthors have published a paper on the new material in a recent issue of Nano Letters.

The improved performance stems in large part from the prism-like graphene building blocks that the FFT-GP is made of. The hollow structures of the prism-like graphene that give the material its transparency also provide additional space for chemical reactions to occur compared to other materials. In addition, the aligned and interconnected prism-like structures provide a wide open freeway for ions and electrons to travel along, and the good charge transport leads to an overall better performance.

To make the new material, the researchers had to overcome the biggest obstacle facing the synthesis of thin, transparent graphene sheets, which is that the sheets fracture easily when being removed from their template. Here, the researchers used NaCl powder—essentially finely ground table salt—as the template for FFT-GP growth. Using a method called microwave plasma-enhanced chemical vapor deposition, the researchers created a "plasma atmosphere" of NaCl, carbon, and hydrogen. At the end of this process, the NaCl is allowed to recrystallize on a silicon substrate. These NaCl crystals serve as templates upon which graphene fragments form and grow into prism-like graphene, which can be peeled off the substrate using a razor blade.

Two supercapacitors placed across a smartphone screen demonstrate optical transparency while powering an LED. Credit: Na Li, et al. ?2015 American Chemical Society
 
Although the FFT-GP created here is somewhat wrinkly and has a light brown color, the researchers demonstrated that it can still withstand more than 1,000 bending and stretching cycles with little capacity loss, and still clearly transmits light. The researchers also demonstrated a tandem device made of two integrated FFT-GP-based supercapacitors placed over a smartphone screen (to demonstrate transparency) that lights up an LED.

The material's combination of flexibility, transparency, electrical conductivity, and large surface area open the doors to many new potential applications, such as stretchable and transparent solar cells, rolled-up displays, and self-powered and wearable optoelectronics. The hollow structure of the prism-like graphene could also be exploited for other uses, such as storing more light-absorbing dye in dye-sensitized solar cells. The researchers plan to explore these possibilities in the future.

"First, we are trying to use FFT-GP in dye-sensitized solar cells," Wang said. "Due to its hollow and porous prism-like graphene building blocks with large efficient surface area, larger amounts of light-absorbing dye could be stored than in other graphene materials. Maybe this design is a better solution to improve the dye adsorption and to enhance the light trapping and scattering capability compared to other graphene materials. Second, FFT-GP-based high-theoretical-capacitance composites will be synthesized to improve the energy density of FFT-GP-based transparent supercapacitors. Third, FFT-GP could be applied as lithium-ion battery anodes, and then a transparent all-solid-state lithium-ion battery can be developed."

More information: Na Li, et al. "Free-Standing and Transparent Graphene Membrane of Polyhedron Box-Shaped Basic Building Units Directly Grown Using a NaCl Template for Flexible Transparent and Stretchable Solid-State Supercapacitors." Nano Letters. DOI: 10.1021/acs.nanolett.5b00364
澳门百家乐必杀技| 长沙市| 真人百家乐官网送钱| 澳门百家乐怎么看小路| 德州扑克 单机版| 百家乐官网怎样赢| 娱乐城送| 大佬百家乐现金网| 网络博彩qq群| 百家乐官网怎么玩| 缅甸黄金赌场| 皇冠百家乐赢钱皇冠| 澳门百家乐官网哪家信誉最好| 嘉年华百家乐的玩法技巧和规则| 大发888网址| 作弊百家乐官网赌具| 博彩套利| 百家乐凯时娱乐平台| 百家乐官网网上真钱娱乐平台 | 大发888秘籍| 百家乐外挂程式| 百家乐官网信誉平台开户| 大发888注册送50| 八大胜百家乐现金网| 百家乐官网怎样投注好| 大发888官网授权网| 武隆县| 济宁市| 网络百家乐的玩法技巧和规则| 捷豹百家乐娱乐城| 喜来登百家乐的玩法技巧和规则| 百家乐官网玄机| 威尼斯人娱乐场官网是骗人的吗| 娱乐城网站| 龙博百家乐官网的玩法技巧和规则 | 百家乐体育宝贝| 疏附县| 新大发888娱乐城| 免佣百家乐赌场优势| 棋牌百家乐官网有稳赚的方法吗| 百家乐官网下注的规律|