EPISODE · Sep 24, 2024 · 9 MIN
Light momentum turns pure silicon from an indirect to a direct bandgap semiconductor
from Heliox: Where Evidence Meets Empathy 🇨🇦 · host by SC Zoomers
Send us Fan MailLight momentum turns pure silicon from an indirect to a direct bandgap semiconductorhttps://phys.org/news/2024-09-momentum-pure-silicon-indirect-bandgap.html Original Paperhttps://arxiv.org/pdf/2304.14521Photon Momentum-Enabled Light Absorption in Bulk SiliconSource: Kharintsev, S. S. et al. Photon momentum enabled light absorption in bulk silicon. Science Advances, 10, eadf5997 (2024).Central Theme: This research demonstrates a novel method to dramatically enhance light absorption in silicon, an indirect bandgap semiconductor, by exploiting the momentum of confined photons. This challenges the traditional reliance on plasmonic or light-trapping mechanisms for improving silicon's optical properties.Key Findings:Photon Momentum as a Driving Force: Confining photons to scales below 3 nm significantly increases their momentum, enabling direct optical transitions in silicon that would otherwise be forbidden due to momentum mismatch. "Photons do not carry sufficient momentum to induce indirect optical transitions in semiconducting materials such as silicon, necessitating the assistance of lattice phonons to conserve momentum… This work introduces an alternative strategy to fulfill the momentum-matching requirement in indirect optical transitions."Enhanced Absorption Across Broad Spectrum: This effect substantially increases silicon's absorption coefficient across a wide spectral range, from the UV to the near-IR, effectively transforming it into a direct bandgap semiconductor for the confined photons.Experimental Validation: Tip-enhanced Raman scattering (TERS) experiments demonstrate significant heating and melting of silicon AFM tips when placed near 1-2 nm gold structures on a substrate. This is attributed to enhanced absorption due to confined photon momentum. "We observe an inverse relationship between particle size and optical heating, as revealed by both Raman (Figures 3b2-3b5) and phase measurements (Figures 3c1-3c5)."Reflectance measurements on silicon wafers decorated with 1-2 nm gold nanoparticles show reduced reflection, indicating enhanced absorption, particularly near the silicon's band edge. "The difference in the reflectance spectra, between the bare wafer and the covered wafer, shows an abrupt reduction of light reflection at the band edge, at 1100 nm, and a lower but otherwise flat response throughout the UV-IR. The reduced reflectance can be explained as direct absorption…"Photocurrent measurements on silicon photodiodes with gold-coated photosensitive layers exhibit increased responsivity, signifying enhanced light absorption and photocarrier generation.Mechanism Outperforming Plasmonics: The observed enhancement cannot be explained by plasmonic or geometry-dependent field enhancement alone. The inverse relationship between structure size and absorption enhancement further supports the dominant role of confined photon momentum.Potential Impact: This discovery opens up new possibilities for significantly boosting the efficiency of silicon-based devices in various fields:Photovoltaics: Thinner and cheaper silicon solar cells with enhanced light harvesting capabilities.Photodetection: Improved sensitivity and responsivity of silicon photodetectors.Optoelectronics: More efficient light emission and manipulation in silicon-based devices.Conclusion: This research highlights the importance of photon momentum in light-matter interactions at the nanoscale. Harnessing this previously underexplored aspect provides a fundamentally new approachThis is Heliox: Where Evidence Meets EmpathyIndependent, moderated, timely, deep, gentle, clinical, global, and community conversations about things that matter. Breathe Easy, we go deep and lightly surface the big ideas. Support the showDisclosure: This podcast uses AI-generated synthetic voices for a material portion of the audio content, in line with Apple Podcasts guidelines. We make rigorous science accessible, accurate, and unforgettable.Produced by Michelle Bruecker and Scott Bleackley, it features reviews of emerging research and ideas from leading thinkers, curated under our creative direction with AI assistance for voice, imagery, and composition. Systemic voices and illustrative images of people are representative tools, not depictions of specific individuals.We dive deep into peer-reviewed research, pre-prints, and major scientific works—then bring them to life through the stories of the researchers themselves. Complex ideas become clear. Obscure discoveries become conversation starters. And you walk away understanding not just what scientists discovered, but why it matters and how they got there.Independent, moderated, timely, deep, gentle, clinical, global, and community conversations about things that matter. Breathe Easy, we go deep and lightly surface the big ideas.Spoken word, short and sweet, with rhythm and a catchy beat.http://tinyurl.com/stonefolksongs
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Send us Fan Mail Light momentum turns pure silicon from an indirect to a direct bandgap semiconductor https://phys.org/news/2024-09-momentum-pure-silicon-indirect-bandgap.html Original Paper https://arxiv.org/pdf/2304.14521 Photon Momentum-Enabled Light Absorption in Bulk Silicon Source: Kharintsev, S. S. et al. Photon momentum enabled light absorption in bulk silicon. Science Advances, 10, eadf5997 (2024). Central Theme: This research demonstrates a novel method to dramatically enhance l...
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Light momentum turns pure silicon from an indirect to a direct bandgap semiconductor
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