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Life cycle benefits of using nanotechnology to stabilize platinum-group metal particles in automotive catalysts

机译:使用纳米技术稳定汽车催化剂中铂族金属颗粒的生命周期收益

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Due to advances in nanotechnology, the approach to catalytic design is transitioning from trial-and-error to planned design and control. Expected advances should enable the design and construction of catalysts to increase reaction speed, yield, and catalyst durability while also reducing active species loading levels. Nanofabrication techniques enabling precise control over the shape, size, and position of nanoscale platinum-group metal (PGM) particles in automotive catalysts should result in reduced PGM loading levels. These reductions would decrease energy consumption, improve environmental quality, and contribute to sustainable resource usage. We estimate the amount of PGM required to meet U.S. vehicle emissions standards through 2030 based on current catalysttechnology. We then estimate the range of PGM that could be saved from potential nanotechnology advances. Finally, we employ economic input-output and process-based life cycle assessment models to estimate the direct and life cycle benefits from reducing PGM mining and refining.
机译:由于纳米技术的进步,催化设计的方法正在从反复试验过渡到计划的设计和控制。预期的进步将使催化剂的设计和构造能够提高反应速度,产率和催化剂耐久性,同时还降低活性物质的负载量。能够精确控制汽车催化剂中纳米级铂族金属(PGM)颗粒的形状,大小和位置的纳米制造技术,应能降低PGM的负载量。这些减少将减少能源消耗,改善环境质量,并有助于可持续利用资源。根据目前的催化技术,我们估计到2030年要达到美国汽车排放标准所需的PGM量。然后,我们估计可以从潜在的纳米技术进步中节省的PGM范围。最后,我们采用经济投入产出和基于过程的生命周期评估模型来估算减少PGM开采和提炼带来的直接收益和生命周期收益。

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