Pregled bibliografske jedinice broj: 1208553
Multiple exciton generation in 3D ordered networks of Ge quantum wires in alumina matrix
Multiple exciton generation in 3D ordered networks of Ge quantum wires in alumina matrix // Materials, 15 (2022), 15; 5353, 11 doi:10.3390/ma15155353 (međunarodna recenzija, članak, znanstveni)
CROSBI ID: 1208553 Za ispravke kontaktirajte CROSBI podršku putem web obrasca
Naslov
Multiple exciton generation in 3D ordered networks
of Ge quantum wires in alumina matrix
Autori
Tkalčević, Marija ; Boršak, Denis ; Periša, Ivana ; Bogdanović-Radović, Iva ; Šarić, Iva ; Petravić, Mladen ; Bernstorff, Sigrid ; Mičetić, Maja
Izvornik
Materials (1996-1944) 15
(2022), 15;
5353, 11
Vrsta, podvrsta i kategorija rada
Radovi u časopisima, članak, znanstveni
Ključne riječi
Ge quantum wires ; multiple exciton generation ; quantum efficiency ; thin films ; sensors ; solar cells
Sažetak
Thin films containing 3D-ordered semiconductor quantum wires offer a great tool to improve the properties of photosensitive devices. In the present work, we investigate the photogenerated current in thin films consisting of an interconnected 3D-ordered network of Ge quantum wires in an alumina matrix. The films are prepared using nitrogen-assisted magnetron sputtering co- deposition of Ge and Al2O3. We demonstrate a strong photocurrent generation in the films, much stronger than in similar films containing Ge quantum dots. The enhanced photocurrent generation is the consequence of the multiple exciton generation and the films’ specific structure that allows for efficient carrier transport. Thin film with the largest nitrogen content showed enhanced performance compared to other thin films with 1.6 excitons created after absorption of a single photon at an energy nearly equal to the double bandgap value. The bandgap value depends on the geometrical properties of the quantum wires, and it is close to the maximum of the solar irradiance in this case. In addition, we show that the multiple exciton generation is the most pronounced at the photon energy values equal to multiple values of the thin film bandgap.
Izvorni jezik
Engleski
Znanstvena područja
Fizika, Interdisciplinarne prirodne znanosti, Temeljne tehničke znanosti, Interdisciplinarne tehničke znanosti
POVEZANOST RADA
Projekti:
HRZZ-IP-2018-01-3633 - 3D mreže kompleksnih Ge-baziranih nanostruktura u staklima: svojstva i primjene (NetNano) (Mičetić, Maja, HRZZ - 2018-01) ( CroRIS)
Ustanove:
Institut "Ruđer Bošković", Zagreb,
Sveučilište u Rijeci - Odjel za fiziku
Profili:
Ivančica Bogdanović Radović
(autor)
Iva Šarić
(autor)
Maja Mičetić
(autor)
Mladen Petravić
(autor)
Ivana Periša
(autor)
Marija Tkalčević
(autor)