Chinese researchers create ultra-thin copper foil with exceptional strength
•Must ReadScience & TechnologyChinese researchers create ultra-thin copper foil with exceptional strengthBy Kumail Shah-Apr 20, 2026Chinese researchers have created an ultra-thin copper foil with e...
•Copper foil functions as both an electric current pathway and a heat conductor.
•Historically, enhancing strength often compromised conductivity, and improving conductivity typically reduced thermal stability.
هذا الخبر من ARY News EN. خبر يقدم أدوات ذكاء اصطناعي للتلخيص والترجمة والاستماع.
Must ReadScience & TechnologyChinese researchers create ultra-thin copper foil with exceptional strengthBy Kumail Shah-Apr 20, 2026Chinese researchers have created an ultra-thin copper foil with exceptional strength, conductivity, and thermal stability, opening new possibilities for advanced batteries and integrated circuits. Copper foil functions as both an electric current pathway and a heat conductor. Historically, enhancing strength often compromised conductivity, and improving conductivity typically reduced thermal stability. Now, Chinese researchers claim they have overcome this trade-off. The new 10-micrometer-thick copper foil features nanoscale grains and periodically arranged gradient super-nano domains about 3 nanometers in size throughout its thickness. It can be manufactured via an industrially scalable electrodeposition process. Conventional copper foil typically has a tensile strength of 300-600 MPa, whereas this new material reaches about 900 MPa, nearly twice as strong. By decoupling strength from conductivity, it maintains electrical conductivity at approximately 90% of that of high-purity copper. Compared to similar-strength traditional copper alloys, its conductivity is approximately twice as high. It also shows strong thermal stability. While many high-strength materials tend to degrade within days, the new copper foil shows no decline after six months of storage under normal conditions. It will make it well-suited for electronic devices and batteries that require long-term stability. The researchers attribute these impressive properties to a dual stabilization-strengthening mechanism, in which the periodically distributed super-nano domains enhance strength while stabilizing grain boundaries. With its proven industrial scalability, this material is expected to support next-generation advancements in smartphones, artificial intelligence (AI) chips, and electric vehicles.المصدر: ARY News EN | Source: ARY News EN
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This article was originally published by ARY News EN. Khabr is a licensed Jordanian AI-powered news platform (Registration #82086). We add editorial value through: AI-powered news analysis, automated summaries, AI audio narration, multi-language translation (Arabic, English, French, Turkish), and AI fact-checking. Our mission is to make news more accessible and understandable for Arabic-speaking audiences worldwide.

