Breaking 16:50 EU fines Google nearly $1 billion in fresh antitrust action 13:49 US Senate moves closer to a key vote on the CLARITY Act for cryptocurrency regulation 13:30 Rubio says Saudi Arabia plans to develop a peaceful nuclear program 13:10 Meta lawsuit highlights challenges in proving AI bias in workplace layoffs 11:30 Elon Musk plans AI-generated adaptation of Homer's Odyssey with focus on historical authenticity 11:16 IBM acquires HRL Laboratories to expand dual-track quantum computing strategy 11:15 US aviation authorities introduce new standards to protect aircraft from 5G signal interference 10:56 Lockheed Martin raises 2026 outlook as global conflicts drive weapons demand 10:47 Amazon cuts jobs in AI division as it reshapes investment priorities 10:43 T-Mobile lifts free cash flow outlook as premium plans drive stronger growth 10:37 Amazon prepares AI-focused Prime Video overhaul under Jeff Bezos’ leadership 10:15 Elon Musk fuels speculation over potential Tesla and SpaceX merger 09:50 OpenAI pauses experimental AI model after it attempts to bypass safety restrictions 09:39 US deploys F-35 fighter jets to Middle East amid rising tensions with Iran 08:00 Rubio says Iran faces major dilemma as Washington keeps diplomatic door open 07:20 Substack introduces new tool to identify AI-generated content 07:15 US-Russia diplomatic talks highlight renewed tensions over Ukraine arms deliveries 18:45 US Senate advances bill targeting Chinese automakers and foreign ownership risks 18:30 AMD invests $5 billion in Anthropic as AI chip race intensifies against Nvidia

Silver coating makes solid-state batteries five times crack-resistant

Friday 16 January 2026 - 13:50
By: Dakir Madiha
Silver coating makes solid-state batteries five times crack-resistant

Researchers at Stanford University have developed an ultra-thin silver coating for solid electrolytes that boosts crack resistance nearly fivefold, tackling a key barrier to commercializing next-generation lithium-metal batteries. Published January 16 in Nature Materials, the breakthrough promises safer batteries with higher energy density and faster charging compared to current lithium-ion technology.

Solid-state batteries aim to replace flammable liquid electrolytes with durable ceramic materials like LLZO, composed of lithium, lanthanum, zirconium, and oxygen. These ceramics, while theoretically superior, suffer from micro-cracks during charge cycles that lead to failure. The Stanford team applied a 3-nanometer silver layer, then heated samples to 300 degrees Celsius, allowing silver atoms to diffuse 20 to 50 nanometers deep and replace smaller lithium atoms.

Dissolved silver ions, not metallic silver, proved key to hardening the ceramic and blocking crack initiation and propagation. Lead researcher Xin Xu, now an assistant professor at Arizona State University, noted this nanoscale doping transforms how fissures form on electrolyte surfaces, enabling robust solid electrolytes for advanced energy storage.

This protective approach suits real-world manufacturing, where stacking cathodes, electrolytes, and anodes inevitably creates surface imperfections that prove costly to eliminate entirely. Associate Professor Wendy Gu, the study's senior author, emphasized that a simple silver treatment realistically shields against lithium infiltration during rapid charging, preventing crack expansion.

Tests focused on localized sample areas rather than full cells, leaving scalability and long-term performance over thousands of cycles for future validation. Silver is not unique; larger metal ions like copper show promise, though less effectively, opening paths to sulfur-based electrolytes or sodium batteries that ease lithium supply strains.


  • Fajr
  • Sunrise
  • Dhuhr
  • Asr
  • Maghrib
  • Isha

Read more

This website, walaw.press, uses cookies to provide you with a good browsing experience and to continuously improve our services. By continuing to browse this site, you agree to the use of these cookies.