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十年深耕,逐光前行|致敬每一位与中科科创同行的你

时光荏苒,从2015年8月28日创业初心萌发,到2025年秋色浸染成长印记,中科科创已走过十载。这十年,是风雨跋涉,是砥砺攀登,更是与伙伴并肩筑梦的征程。此刻,我们怀感恩与憧憬,回望来路,再赴新程。 十年前的夏天,杨辉研究员率6人团队在宁波慈溪叩响氢能大门。无聚光灯、无现成路径,他们凭“把事做好”的执拗,誓啃批量制备燃料电池催化剂的硬骨头,要在氢能赛道蹚出中国路。 最初的日子,挑战如影随形。研发人

燃料电池膜电极三相界面设计-离聚物毒化

在催化剂的初期开发阶段,基于液相电解质的强制对流技术是常用的评价手段,如旋转圆盘电极(RDE)、气体扩散电极(GDE)等。在RDE中,所有基于铂的纳米颗粒都浸泡在液体电解质中,可以通过水合质子和电解质传输的溶解氧与溶液完全接触。然而,为了能够模拟燃料电池或者电解槽系统实际工况条件下催化剂的活性表达与长周期衍化规律,则需膜电极(MEA)测试。在MEA中,气体、催化剂和离聚物(催化层,CL)、水的三相

中科院/宁波中科科创Nano Energy:法拉第效率91%!高自旋CoN4-C选择性电催化2e-ORR高效合成H2O2!

过氧化氢(H2O2)作为绿色氧化剂,在污水处理、化学合成等领域至关重要。传统蒽醌法生产H2O2能耗高、副产物多、碳排放量大,而酸性条件下的电化学氧还原(2e ORR, O2 + 2e + 2H+ → H2O2)凭借低碳、原位生产的优势,成为理想替代方案。其中,*OOH是ORR过程的关键中间体,*OOH在活性位点上的吸附强度决定了ORR的2e/4e路径选择性及活性。一方面,如果*OOH在活性位点上吸

Chinese Academy of Sciences/Ningbo Zhongke Kechuang AM: Sulfur-doped IrO2 triggers the OER lattice oxygen mechanism to achieve low Ir dosage and high stability proton exchange membrane water electrolysis

Recently, the team led by Researcher Yang Hui from the Shanghai Advanced Research Institute of the Chinese Academy of Sciences and Ningbo Zhongke Kechuang have made important progress in the research and development of iridium-based catalysts for the anode of proton exchange membrane water electrolyzers (PEMWE). Traditional IrO₂ catalysts follow the adsorption evolution mechanism (AEM), which is restricted by the linear relationship and it is difficult to break through the intrinsic activity. Lattice oxygen mechanism (LOM) By directly utilizing lattice oxygen to participate in the reaction, the energy barrier limitation can be broken, but it will cause the loss of lattice oxygen and weaken the Ir-O bond. The team proposed a sulfur-mediated IrO2 catalyst (IrO2/S) to switch the OER pathway from the traditional AEM to LO

Ningbo Energy Bureau and Cixi Development and Reform Bureau jointly investigated Zhongke Kechuang | jointly explored innovative development in the energy field

On July 25, 2025, Xu Wenping, Director of the Ningbo Energy Bureau, Zhang Kedi, Deputy Director of the Cixi Development and Reform Bureau, and others visited Zhongke Kechuang for an in-depth investigation. This investigation focused on the company's innovative development trends in energy-related fields, aiming to fully grasp its latest progress. Accompanied by Dr. Zhu, the company's R&D engineer, the investigation team first made detailed inquiries about the company's core product characteristics and application scenarios. Afterwards, the group visited Zhongke Kechuang's laboratory and production line, and listened carefully to the detailed introduction of the laboratory's research direction, ongoing scientific research projects, and interim results. During the investigation, Director Xu