Add like
Add dislike
Add to saved papers

H0.92K0.08TiNbO5 Nanowires Enabling High Performance Lithium-Ion Uptake.

HTiNbO5 has been widely investigated in many fields because of its distinctive properties such as good redox activity, high photocatalytic activity and environmental benignancy. Here, this work reports the synthesis of one dimensional H0.92K0.08TiNbO5 nanowires via a simple electrospinning followed by an ion-exchange reaction. The H0.92K0.08TiNbO5 nanowires consist of many small "lumps" with a uniform diameter distribution around 150 nm. Used as an anode for lithium ion batteries, H0.92K0.08TiNbO5 nanowires exhibit high capacity, fast electrochemical kinetics and high performance of lithium-ion uptake. A capacity of 144.1 mAh g-1 can be carried by H0.92K0.08TiNbO5 nanowires at 0.5 C in initial charge and even after 150th cycles, the reversible capacity can keep at 123.7 mAh g-1 with an excellent capacity retention of 85.84%. For H0.92K0.08TiNbO5 nanowires, the diffusion coefficient of lithium ions is 1.97×10-11 cm2 s-1, which promotes the lithium-ion uptake effectively. The outstanding electrochemical performance is ascribed to its morphology and the formation of stable phase during cycling. In addition, the in situ X-ray diffraction (XRD) and ex situ transmission electron microscopy (TEM) techniques are applied to reveal its lithium storage mechanism, which prove the structure stability and electrochemical reversibility, thus achieving high performance lithium-ion uptake. All these advantages demonstrate that H0.92K0.08TiNbO5 nanowires can be a possible alternative anode material for rechargeable batteries.

Full text links

We have located links that may give you full text access.
Can't access the paper?
Try logging in through your university/institutional subscription. For a smoother one-click institutional access experience, please use our mobile app.

Related Resources

For the best experience, use the Read mobile app

Mobile app image

Get seemless 1-tap access through your institution/university

For the best experience, use the Read mobile app

All material on this website is protected by copyright, Copyright © 1994-2024 by WebMD LLC.
This website also contains material copyrighted by 3rd parties.

By using this service, you agree to our terms of use and privacy policy.

Your Privacy Choices Toggle icon

You can now claim free CME credits for this literature searchClaim now

Get seemless 1-tap access through your institution/university

For the best experience, use the Read mobile app