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רÌ⣺¡¶¹ú¼Ò¿ÆÑ§ÆÀÂÛ¡·£¨National Science Review£¬NSR£¬ÖпÆÔºÖ÷¹Ü£¬IF 8.843£©2017ÄêµÚÒ»ÆÚ£¬Special Topic£ºENERGY STORAGE MATERIALS

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±¾ÆÚרÌâ°üº¬£ºResearch Highlight 1ƪ£»Perspective 3ƪ£»Review 4ƪ£»Interview 1ƪ£¨ÎïÀíËù³ÂÁ¢Èª£¬¹¤³ÌԺԺʿ£¬ï®µç³Ø£©

ÌØÑû±àÕß°´£¨²Ü¹úÖÒ£©£ºSearch for better materials for rechargeable electric energy storage

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Electric power is the most convenient power source, and electric energy storage, particularly rechargeable electric energy storage, is the most important technology for both stationary and mobile applications. It easily explains the longstanding research and industrial fervor for electric energy storage technologies: rechargeable batteries and capacitors. In spite of the huge investment of financial and human capital, the advancement of batteries and supercapacitors has been painstakingly slow, lagging well behind the constant proliferation of other modern technologies. Unlike transistors, there is no Moore's Law for batteries! The biggest hurdle hindering the advancement of rechargeable batteries and supercapacitors lies the materials used in the devices and the interfaces between different materials: electrodes, electrolyte and membranes, additives and binders. Novel materials and solid fundamental understanding are imperative to realizing a revolution of high-energy and high-power electric energy conversion and storage technologies.
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