Kopsavilkums
Precise detection of greenhouse gases (GHGs) is crucial for understanding their emission trends and developing mitigation strategies. The narrow bandgap of indium antimonide (InSb) allows it to be very responsive in the mid-wave infrared (MWIR) wavelength range (3-5 µm) and ideal for detecting gases like carbon dioxide (CO2) and methane (CH4), which have absorption peaks at 4.2 µm and 3.3 µm, respectively. Plasmonic metasurfaces offer a promising route to enhance the performance of InSb photodiodes by increasing their sensitivity, efficiency, and spectral tunability. We propose a ‘GHG plasmonic meta-absorber’ device that specifically targets fingerprint absorption peaks of CO2 and CH4. Our opto-electrical co-simulations show that a Au plasmonic grating over a sub-micron InSb film can be designed to achieve unity absorption at the target wavelengths with 6-fold and 10-fold improvement in photocurrent at 3.3 µm and 4.2 µm wavelengths, respectively. Moreover, even when the Au grating does not realise a metasurface, our numerical results still show photocurrent enhancement as long as the grating Au electrode separation is less than the minority carrier diffusion length (10 µm), attributed to collection of more photoexcited carriers. Thus, the proposed plasmonic grating serves a dual purpose - Absorption enhancement of MWIR light inside the InSb layer; and collection of more current through photoexcited carriers via multiple contacts. Thus, the superior opto-electrical performance of the proposed device offers a transformative approach to precise GHG detection, combining advanced materials with plasmonic engineering.
| Oriģinālvaloda | Angļu |
|---|---|
| Rīkotāja publikācijas nosaukums | Physics and Simulation of Optoelectronic Devices XXXIII |
| Redaktori | Bernd Witzigmann, Marek Osinski, Yasuhiko Arakawa |
| Izdevējs | SPIE |
| ISBN (Elektroniski) | 9781510684683 |
| DOIs | |
| Publikācijas statuss | Publicēts - 2025 |
| Ārēji publicēts | Jā |
| Pasākums | Physics and Simulation of Optoelectronic Devices XXXIII 2025 - San Francisco, Amerikas Savienotās Valstis Ilgums: 28 janv. 2025 → 29 janv. 2025 |
Publikāciju sērijas
| Nosaukums | Proceedings of SPIE - The International Society for Optical Engineering |
|---|---|
| Sējums | 13360 |
| ISSN (Drukātā versija) | 0277-786X |
| ISSN (Elektroniskā versija) | 1996-756X |
Konference
| Konference | Physics and Simulation of Optoelectronic Devices XXXIII 2025 |
|---|---|
| Valsts/Teritorija | Amerikas Savienotās Valstis |
| Pilsēta | San Francisco |
| Periods | 28/01/25 → 29/01/25 |
ANO IAM
Šis izpildes rezultāts palīdz sasniegt šādus ANO ilgtspējīgas attīstības mērķus (IAM)
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13. IAM — Klimatrīcība
Nospiedums
Uzziniet vairāk par pētniecības tēmām “Schottky Au-InSb Plasmonic Photodiode for Greenhouse Gas Detection”. Kopā tie veido unikālu nospiedumu.Citēt šo
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