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    • 3. 发明授权
    • Fuel cell membrane electrode assemblies with improved power outputs
    • 具有改进的功率输出的燃料电池膜电极组件
    • US06287717B1
    • 2001-09-11
    • US09190215
    • 1998-11-13
    • Carlos A. CavalcaJames H. Arps
    • Carlos A. CavalcaJames H. Arps
    • H01M486
    • H01M8/1004H01M4/8657H01M2250/20H01M2300/0082Y02E60/521Y02T90/32
    • An electrode-membrane combination for use in a fuel cell comprising at least one reactant diffusive, electronically conductive electrode comprising at least one first catalytically active metal and at least one ionically conductive polymer; and at least one ionically conductive membrane contacting the electrode to form an electrode-membrane interfacial region, wherein the interfacial region comprises at least one zone comprising at least one second catalytically active metal and having a zone thickness of about 3 angstroms to about 475 angstroms. Surprisingly improved power output is observed. The zone is preferably deposited by electron beam physical vapor deposition. Substantially spherical nodules are observed for the zone from field-emission SEM analysis.
    • 一种用于燃料电池的电极 - 膜组合,包括至少一种反应物扩散的电子导电电极,其包含至少一种第一催化活性金属和至少一种离子导电聚合物; 和至少一个离子导电膜接触电极以形成电极 - 膜界面区域,其中界面区域包括至少一个包含至少一个第二催化活性金属并具有约3埃至约475埃的区域厚度的区域。 观察到惊人的功率输出。 该区域优选通过电子束物理气相沉积沉积。 从场发射扫描电子显微镜分析观察到该区域的实质球形结节。
    • 5. 发明申请
    • Biodegradable Metal-Polymer Composite Constructs For Implantable Medical Devices
    • 用于可植入医疗器械的可生物降解的金属 - 聚合物复合材料
    • US20110046721A1
    • 2011-02-24
    • US12853794
    • 2010-08-10
    • James H. Arps
    • James H. Arps
    • A61F2/82A61F2/00
    • A61L31/148A61L31/128C08L67/04
    • Embodiments of the invention include biodegradable composites and medical devices including the same. In an embodiment the invention includes a biodegradable implantable medical device. The implantable medical device can include a biodegradable composite member including a polymeric matrix and a reinforcing metal disposed within the polymeric matrix. The biodegradable composite member can be configured to erode in vivo. In an embodiment the invention includes a method of making a biodegradable implantable device including contacting a polymer mixture with a reinforcing metal, the polymer mixture comprising a polymer that degrades under in vivo conditions and the reinforcing metal comprising a metal that produces substantially non-toxic erosion products. Other embodiments are included herein.
    • 本发明的实施方案包括可生物降解的复合物和包括其的医疗装置。 在一个实施方案中,本发明包括可生物降解的可植入医疗装置。 可植入医疗装置可以包括可生物降解的复合构件,其包括聚合物基质和设置在聚合物基体内的增强金属。 可生物降解的复合构件可以被配置为在体内侵蚀。 在一个实施方案中,本发明包括制备可生物降解的可植入装置的方法,包括使聚合物混合物与增强金属接触,所述聚合物混合物包含在体内条件下降解的聚合物和包含产生基本无毒侵蚀的金属的增强金属 产品。 本文还包括其它实施例。