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用于电子系统广谱防护的复合辐射屏蔽材料的3D打印

3D Printing of Composite Radiation Shielding for Broad Spectrum Protection of Electronic Systems.

作者信息

Rosh-Gorsky Avery, Coon Austin, Beck Devon, D'Onofrio Richard, Binney Quinn, Queen Isaiah, Barney Andrea, Longton Robert, Long Ashley Carlton, Gouker Pascale, Ledford Keri, Smith Melissa Alyson, Cascio Ethan, Konomi Ksenofon, Duncan Bradley

机构信息

Lincoln Laboratory, Massachusetts Institute of Technology, Lexington, MA, 02421, USA.

Francis H. Burr Proton Therapy Center, Massachusetts General Hospital, Boston, MA, 02114, USA.

出版信息

Adv Mater. 2024 Aug;36(33):e2403822. doi: 10.1002/adma.202403822. Epub 2024 Jun 3.

Abstract

The miniaturization of satellite systems has compounded the need to protect microelectronic components from damaging radiation. Current approaches to mitigate this damage, such as indiscriminate mass shielding, built-in redundancies, and radiation-hardened electronics, introduce high size, weight, power, and cost penalties that impact the overall performance of the satellite or launch opportunities. Additive manufacturing provides an appealing strategy to deposit radiation shielding only on susceptible components within an electronic assembly. Here, a versatile material platform and process to conformally print customized composite inks at room temperature directly and selectively onto commercial-off-the-shelf electronics is described. The suite of inks uses a flexible styrene-isoprene-styrene block copolymer binder that can be filled with particles of different atomic densities for diverging radiation shielding capabilities. Additionally, the system enables the combination of multiple distinct particle species within the same printed structure. The method can produce graded shielding that offers improved radiation attenuation by tailoring both shield geometry and composition to provide comprehensive protection from a broad range of radiation species. The authors anticipate this alternative to traditional shielding methods will enable the rapid proliferation of the next generation of compact satellite designs.

摘要

卫星系统的小型化使得保护微电子元件免受有害辐射的需求变得更加复杂。当前减轻这种损害的方法,如不加区分的大规模屏蔽、内置冗余和抗辐射电子器件,会带来高尺寸、重量、功率和成本代价,从而影响卫星的整体性能或发射机会。增材制造提供了一种有吸引力的策略,即仅在电子组件中的易损部件上沉积辐射屏蔽材料。在此,描述了一种通用的材料平台和工艺,可在室温下直接且选择性地将定制复合油墨保形印刷到现成的商用电子产品上。该系列油墨使用一种柔性苯乙烯 - 异戊二烯 - 苯乙烯嵌段共聚物粘合剂,该粘合剂可填充不同原子密度的颗粒,以实现不同的辐射屏蔽能力。此外,该系统能够在同一印刷结构中组合多种不同的颗粒种类。该方法可以通过调整屏蔽几何形状和成分来产生分级屏蔽,从而提供更好的辐射衰减,以全面保护免受多种辐射种类的影响。作者预计,这种传统屏蔽方法的替代方案将推动下一代紧凑型卫星设计的迅速普及。

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