Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Naji, M.
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Pasanen, Toni P.

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Helsinki Institute of Physics

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (21/21 displayed)

  • 2023Surface passivation of Germanium with ALD Al2O3: Impact of Composition and Crystallinity of GeOx Interlayer6citations
  • 2023Excellent Responsivity and Low Dark Current Obtained with Metal-Assisted Chemical Etched Si Photodiode4citations
  • 2023Comparison of SiNx-based Surface Passivation Between Germanium and Silicon9citations
  • 2023Plasma-enhanced atomic layer deposited SiO2 enables positive thin film charge and surface recombination velocity of 1.3 cm/s on germanium5citations
  • 2023Quantifying the Impact of Al Deposition Method on Underlying Al2O3/Si Interface Quality2citations
  • 2022Perspectives on Black Silicon in Semiconductor Manufacturing: Experimental Comparison of Plasma Etching, MACE and Fs-Laser Etching32citations
  • 2022Millisecond-Level Minority Carrier Lifetime in Femtosecond Laser-Textured Black Silicon11citations
  • 2022(oral talk) Compatibility of Al-neal in processing of Si devices with Al2O3 layercitations
  • 2022Impact of doping and silicon substrate resistivity on the blistering of atomic-layer-deposited aluminium oxide9citations
  • 2021Efficient photon capture on germanium surfaces using industrially feasible nanostructure formation13citations
  • 2021Al-neal Degrades Al2O3 Passivation of Silicon Surface3citations
  • 2020Modeling Field-effect in Black Silicon and its Impact on Device Performance10citations
  • 2020Passivation of Detector-Grade Float Zone Silicon with Atomic Layer Deposited Aluminum Oxide12citations
  • 2020Impact of doping and silicon substrate resistivity on the blistering of atomic-layer-deposited aluminium oxide9citations
  • 2019Effect of MACE Parameters on Electrical and Optical Properties of ALD Passivated Black Silicon28citations
  • 2019Compatibility of 3-D Printed Devices in Cleanroom Environments for Semiconductor Processing16citations
  • 2019Compatibility of 3-D Printed Devices in Cleanroom Environments for Semiconductor Processing16citations
  • 2019Passivation of Detector‐Grade FZ‐Si with ALD‐Grown Aluminium Oxide12citations
  • 2018Economic Advantages of Dry-Etched Black Silicon in Passivated Emitter Rear Cell (PERC) Photovoltaic Manufacturing29citations
  • 2018Economic Advantages of Dry-Etched Black Silicon in Passivated Emitter Rear Cell (PERC) Photovoltaic Manufacturing29citations
  • 2017Surface passivation of black silicon phosphorus emitters with atomic layer deposited SiO2/Al2O3 stacks34citations

Places of action

Chart of shared publication
Lehtiö, Juha Pekka
2 / 2 shared
Isometsä, Joonas
4 / 6 shared
Liu, Hanchen
3 / 7 shared
Kokko, K.
1 / 6 shared
Vähänissi, Ville
17 / 43 shared
Savin, Hele
21 / 75 shared
Leiviskä, Oskari
3 / 8 shared
Laukkanen, P.
1 / 9 shared
Fung, Tsun Hang
3 / 5 shared
Miettinen, Mikko
2 / 5 shared
Rad, Zahra Jahanshah
2 / 2 shared
Liu, Xiaolong
3 / 13 shared
Radfar, Behrad
3 / 9 shared
Setälä, Olli E.
4 / 4 shared
Serue, Michael
1 / 2 shared
Heinonen, Juha
2 / 2 shared
Chen, Kexun
5 / 7 shared
Yli-Koski, Marko
2 / 7 shared
Laukkanen, Pekka
2 / 11 shared
Ott, Jennifer
7 / 22 shared
Rosta, Kawa
3 / 3 shared
Quliyeva, Ulviyya
1 / 6 shared
Mack, Iris
1 / 1 shared
Soldano, Caterina
1 / 3 shared
Pälikkö, Elmeri
1 / 1 shared
Garin, Moises
1 / 1 shared
Vahanissi, Ville
2 / 5 shared
Gadda, Akiko
1 / 1 shared
Juntunen, Mikko
1 / 2 shared
Repo, Paivikki
1 / 2 shared
Seppanen, Heli
1 / 1 shared
Garín, Moises
1 / 1 shared
Gädda, Akiko
1 / 12 shared
Gastrow, Guillaume Von
1 / 3 shared
Rauha, Ismo T. S.
1 / 4 shared
Pearce, Joshua
2 / 7 shared
Von Gastrow, Guillaume
1 / 3 shared
Heikkinen, Ismo T. S.
1 / 2 shared
Seppänen, Heli
1 / 6 shared
Repo, Päivikki
1 / 2 shared
Laine, Hannu
2 / 3 shared
Modanese, Chiara
2 / 4 shared
Theut, Nicholas
1 / 1 shared
Chart of publication period
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Co-Authors (by relevance)

  • Lehtiö, Juha Pekka
  • Isometsä, Joonas
  • Liu, Hanchen
  • Kokko, K.
  • Vähänissi, Ville
  • Savin, Hele
  • Leiviskä, Oskari
  • Laukkanen, P.
  • Fung, Tsun Hang
  • Miettinen, Mikko
  • Rad, Zahra Jahanshah
  • Liu, Xiaolong
  • Radfar, Behrad
  • Setälä, Olli E.
  • Serue, Michael
  • Heinonen, Juha
  • Chen, Kexun
  • Yli-Koski, Marko
  • Laukkanen, Pekka
  • Ott, Jennifer
  • Rosta, Kawa
  • Quliyeva, Ulviyya
  • Mack, Iris
  • Soldano, Caterina
  • Pälikkö, Elmeri
  • Garin, Moises
  • Vahanissi, Ville
  • Gadda, Akiko
  • Juntunen, Mikko
  • Repo, Paivikki
  • Seppanen, Heli
  • Garín, Moises
  • Gädda, Akiko
  • Gastrow, Guillaume Von
  • Rauha, Ismo T. S.
  • Pearce, Joshua
  • Von Gastrow, Guillaume
  • Heikkinen, Ismo T. S.
  • Seppänen, Heli
  • Repo, Päivikki
  • Laine, Hannu
  • Modanese, Chiara
  • Theut, Nicholas
OrganizationsLocationPeople

document

(oral talk) Compatibility of Al-neal in processing of Si devices with Al2O3 layer

  • Ott, Jennifer
  • Vähänissi, Ville
  • Savin, Hele
  • Setälä, Olli E.
  • Pasanen, Toni P.
Abstract

Surface and bulk defects are a well-known reason for limited operation of silicon devices. These defects cause increased recombination and leakage current, and hence, their avoidance is an important factor in device processing. The traditional choice for surface passivation of silicon devices has been thermally grown silicon dioxide (SiO2). The development of device designs has led to increasing utilization of other thin films as well, including aluminum oxide (Al2O3). However, SiO2 is still often needed alongside Al2O3 in devices, such as induced junction detectors [1]. For effective elimination of defects, SiO2 typically needs to be annealed with a thin Al layer deposited on top of the thin film (so-called Al-neal process) [2]. If both SiO2 and Al2O3 are simultaneously present on the wafer, also the Al2O3 film will experience the Al-neal, which is usually performed as the last processing step in device fabrication. However, it has so far remained unresolved whether Al-nealing would have impact on the passivation performance of Al2O3, and hence, this needs to be studied.<br/><br/>Table 1 demonstrates the well-known result that Al-neal is highly beneficial in the case of SiO2 to reduce the interface defect density. Although Al-neal improves the carrier lifetime in SiO2-passivated Si by a factor of &gt;20, Al2O3 does not need Al-film for superior passivation, as it is provided by regular annealing already. This is mainly due to efficient field-effect passivation induced by the high density of negative fixed charges (see Table 1). However, Figure 1 reveals that the Al-neal process required for SiO2-passivated regions is detrimental for the passivation performance of Al2O3. Especially, if the Al2O3 film has already been annealed once before Al-neal, the lifetime in the Al2O3-passivated regions is reduced by an order of magnitude. Al-nealing Al2O3 directly after its deposition without a separate post-deposition anneal provides good surface passivation but cannot reach the lifetimes achieved without Al-nealing. <br/><br/>The root causes for such behavior are further investigated by separately examining the substeps of Al-nealing and their impact on the passivation performance of Al2O3 film. The two details that set the Al-neal apart from a regular annealing treatment are sputtering of Al on top of Al2O3 and the presence of this Al during annealing. To study the impact of these steps individually, the above experiment is repeated following the same process with the exception that Al is etched from top of Al2O3 before the final annealing. The obtained lifetimes are slightly higher than after Al-nealing but still far from the case without any sputtering (see Table 2), which proves that sputtering damage does indeed have an impact on passivation. Furthermore, the discrepancy still exists between cases with and without separate post-deposition annealing performed prior Al-nealing. This result indicates that sputtering damage can only partly explain the degraded passivation performance during the Al-neal of Al2O3. Another affecting factor could be depletion of hydrogen from the Al2O3 film during multiple annealings. This could result in annealed film not having enough hydrogen left to re-passivate the Si/Al2O3 interface after being damaged by sputtering. The presented findings can be considered in process design to achieve higher performance in silicon devices involving both Al2O3 and SiO2. Subsequently, we have already utilized the optimized Al-neal parameters in fabrication of Si detectors resulting in lower leakage current in the devices.<br/>References:<br/>[1] M. A. Juntunen, J. Heinonen, V. Vähänissi, P. Repo, D. Valluru, H. Savin, Nat. Photonics 10(12), 777-781 (2016).  <br/>[2] P. L. Castro, B. E. Deal, J. Electrochem. Soc. 118(2), 280 (1971).<br/>

Topics
  • Deposition
  • density
  • impedance spectroscopy
  • surface
  • experiment
  • thin film
  • aluminum oxide
  • aluminium
  • Hydrogen
  • Silicon
  • defect
  • annealing