名古屋大学 · Engineering
Xingtao Xu 교수의 연구실은 에너지 저장 및 수자원 회수 기술 분야에서 핵심적인 연구를 수행하고 있습니다. 주요 연구 방향은 고성능 슈퍼커패시터 및 리튬이온 이차전지의 전극 재료로 활용 가능한 나노구조적 금속-유기 프레임워크(MOFs)와 도핑된 탄소 기반 복합재료의 설계 및 응용입니다. 또한 태양광 기반 정수 및 대기수 추출 기술, 전기화학적 탈염 기반 담수화 기술 등 지속 가능한 수자원 확보 기술에도 기여하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Metal-organic frameworks (MOFs) with high porosity and a regular porous structure have emerged as a promising electrode material for supercapacitors, but their poor electrical conductivity limits their utilization efficiency and capacitive performance. To increase the overall electrical conductivity as well as the efficiency of MOF particles, three-dimensional networked MOFs are developed via using preprepared conductive polypyrrole (PPy) tubes as the support for in situ growth of MOF particles.
Alternative water resources (seawater, brackish water, atmospheric water, sewage, <i>etc.</i>) can be converted into clean freshwater <i>via</i> high-efficiency, energy-saving, and cost-effective methods to cope with the global water crisis. Herein, we provide a comprehensive and systematic overview of various solar-powered technologies for alternative water utilization (<i>i</i>.<i>e</i>., "sunlight-energy-water nexus"), including solar-thermal interface desalination (STID), solar-thermal membr
Under the double pressures of both the energy crisis and environmental pollution, the exploitation and utilization of hydrogen, a clean and renewable power resource, has become an important trend in the development of sustainable energy-production and energy-consumption systems. In this regard, the electrocatalytic hydrogen evolution reaction (HER) provides an efficient and clean pathway for the mass production of hydrogen fuel and has motivated the design and construction of highly active HER e
Abstract Ni‐rich Li[Ni x Co y Mn 1− x − y ]O 2 ( x ≥ 0.8) layered oxides are the most promising cathode materials for lithium‐ion batteries due to their high reversible capacity of over 200 mAh g −1 . Unfortunately, the anisotropic properties associated with the α‐NaFeO 2 structured crystal grains result in poor rate capability and insufficient cycle life. To address these issues, a micrometer‐sized Ni‐rich LiNi 0.8 Co 0.1 Mn 0.1 O 2 secondary cathode material consisting of radially aligned sing
Metal–organic framework/polypyrrole hybrids are synthesized and directly used in capacitive deionization for the first time.
The application of traditional electrode materials for high-performance capacitive deionization (CDI) has been persistently limited by their low charge-storage capacities, excessive co-ion expulsion and slow salt removal rates. Here we report a bottom-up approach to the preparation of a two-dimensional (2D) Ti<sub>3</sub> C<sub>2</sub> T<sub>x</sub> MXene-polydopamine heterostructure having ordered in-plane mesochannels (denoted as mPDA/MXene). Interfacial self-assembly of mesoporous polydopamin
This work reports the layer-by-layer motif synthesis of 3D interconnected nitrogen–iron-doped carbon tubes (3D-FeNC tubes) by using continuous polymeric fibers as templates with high capacitive deionization performance in oxygenated saline water.
Capacitive deionization (CDI) is an energy-efficient desalination technique. However, the maximum desalination capacity of conventional carbon-based CDI systems is approximately 20 mg g<sup>-1</sup>, which is too low for practical applications. Therefore, the focus of research on CDI has shifted to the development of faradic electrochemical deionization systems using electrodes based on faradic materials which have a significantly higher ion-storage capacity than carbon-based electrodes. In addi
A super-stretchable and self-recoverable ionic conductive hydrogel was designed and used as a wearable stretchable sensor to monitor human body motions.
Exploring a new-family of carbon-based desalinators to optimize their performances beyond the current commercial benchmark is of significance for the development of practically useful capacitive deionization (CDI) materials. Here, we have fabricated a hierarchically porous N,P-doped carbon-graphene 2D heterostructure (denoted NPC/rGO) by using metal-organic framework (MOF)-nanoparticle-driven assembly on graphene oxide (GO) nanosheets followed by stepwise pyrolysis and phosphorization procedures