Aluminum Evaporation and Etching for the Front-Side Metallization of Solar Cells

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Stefan Eidelloth
  • Frank Heinemeyer
  • Daniel Münster
  • Rolf Brendel

Organisationseinheiten

Externe Organisationen

  • Institut für Solarenergieforschung GmbH (ISFH)
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Aufsatznummer6423774
Seiten (von - bis)702-708
Seitenumfang7
FachzeitschriftIEEE Journal of Photovoltaics
Jahrgang3
Ausgabenummer2
PublikationsstatusVeröffentlicht - 30 Jan. 2013

Abstract

In this paper, we report and discuss several strategies to produce solar cell front contacts by full-area metallization and etching (FAME). Our chemically structured contacts consume less expensive silver than screen-printed contacts. As a proof of principle for the FAME approach, we present a 148.6-cm 2-sized silicon solar cell that has about 100-μm-wide front-side fingers. These fingers consist of a 15-μm-thick evaporated aluminum layer, supplying the electrical conductance, and a sputtered capping stack (200 nm Ni:V plus 20 nm Ag), providing solderability. The entire metal stack is first deposited on the full area of the solar cells, then locally protected by a wax pattern, and subsequently etched with commercial Ni:V etch and NaOH. The efficiency of the best solar cell is 19.3%, the fill factor is 78%, the open-circuit voltage is 666 mV, and the short-circuit current density is 37.1 mA/cm2.

ASJC Scopus Sachgebiete

Ziele für nachhaltige Entwicklung

Zitieren

Aluminum Evaporation and Etching for the Front-Side Metallization of Solar Cells. / Eidelloth, Stefan; Heinemeyer, Frank; Münster, Daniel et al.
in: IEEE Journal of Photovoltaics, Jahrgang 3, Nr. 2, 6423774, 30.01.2013, S. 702-708.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Eidelloth, S., Heinemeyer, F., Münster, D., & Brendel, R. (2013). Aluminum Evaporation and Etching for the Front-Side Metallization of Solar Cells. IEEE Journal of Photovoltaics, 3(2), 702-708. Artikel 6423774. https://doi.org/10.1109/JPHOTOV.2013.2239361
Eidelloth S, Heinemeyer F, Münster D, Brendel R. Aluminum Evaporation and Etching for the Front-Side Metallization of Solar Cells. IEEE Journal of Photovoltaics. 2013 Jan 30;3(2):702-708. 6423774. doi: 10.1109/JPHOTOV.2013.2239361
Eidelloth, Stefan ; Heinemeyer, Frank ; Münster, Daniel et al. / Aluminum Evaporation and Etching for the Front-Side Metallization of Solar Cells. in: IEEE Journal of Photovoltaics. 2013 ; Jahrgang 3, Nr. 2. S. 702-708.
Download
@article{9e74729b2d77449a88594c685abcfec8,
title = "Aluminum Evaporation and Etching for the Front-Side Metallization of Solar Cells",
abstract = "In this paper, we report and discuss several strategies to produce solar cell front contacts by full-area metallization and etching (FAME). Our chemically structured contacts consume less expensive silver than screen-printed contacts. As a proof of principle for the FAME approach, we present a 148.6-cm 2-sized silicon solar cell that has about 100-μm-wide front-side fingers. These fingers consist of a 15-μm-thick evaporated aluminum layer, supplying the electrical conductance, and a sputtered capping stack (200 nm Ni:V plus 20 nm Ag), providing solderability. The entire metal stack is first deposited on the full area of the solar cells, then locally protected by a wax pattern, and subsequently etched with commercial Ni:V etch and NaOH. The efficiency of the best solar cell is 19.3%, the fill factor is 78%, the open-circuit voltage is 666 mV, and the short-circuit current density is 37.1 mA/cm2.",
keywords = "Etching, metallization, photovoltaic cells",
author = "Stefan Eidelloth and Frank Heinemeyer and Daniel M{\"u}nster and Rolf Brendel",
year = "2013",
month = jan,
day = "30",
doi = "10.1109/JPHOTOV.2013.2239361",
language = "English",
volume = "3",
pages = "702--708",
journal = "IEEE Journal of Photovoltaics",
issn = "2156-3381",
publisher = "IEEE Electron Devices Society",
number = "2",

}

Download

TY - JOUR

T1 - Aluminum Evaporation and Etching for the Front-Side Metallization of Solar Cells

AU - Eidelloth, Stefan

AU - Heinemeyer, Frank

AU - Münster, Daniel

AU - Brendel, Rolf

PY - 2013/1/30

Y1 - 2013/1/30

N2 - In this paper, we report and discuss several strategies to produce solar cell front contacts by full-area metallization and etching (FAME). Our chemically structured contacts consume less expensive silver than screen-printed contacts. As a proof of principle for the FAME approach, we present a 148.6-cm 2-sized silicon solar cell that has about 100-μm-wide front-side fingers. These fingers consist of a 15-μm-thick evaporated aluminum layer, supplying the electrical conductance, and a sputtered capping stack (200 nm Ni:V plus 20 nm Ag), providing solderability. The entire metal stack is first deposited on the full area of the solar cells, then locally protected by a wax pattern, and subsequently etched with commercial Ni:V etch and NaOH. The efficiency of the best solar cell is 19.3%, the fill factor is 78%, the open-circuit voltage is 666 mV, and the short-circuit current density is 37.1 mA/cm2.

AB - In this paper, we report and discuss several strategies to produce solar cell front contacts by full-area metallization and etching (FAME). Our chemically structured contacts consume less expensive silver than screen-printed contacts. As a proof of principle for the FAME approach, we present a 148.6-cm 2-sized silicon solar cell that has about 100-μm-wide front-side fingers. These fingers consist of a 15-μm-thick evaporated aluminum layer, supplying the electrical conductance, and a sputtered capping stack (200 nm Ni:V plus 20 nm Ag), providing solderability. The entire metal stack is first deposited on the full area of the solar cells, then locally protected by a wax pattern, and subsequently etched with commercial Ni:V etch and NaOH. The efficiency of the best solar cell is 19.3%, the fill factor is 78%, the open-circuit voltage is 666 mV, and the short-circuit current density is 37.1 mA/cm2.

KW - Etching

KW - metallization

KW - photovoltaic cells

UR - http://www.scopus.com/inward/record.url?scp=84875627372&partnerID=8YFLogxK

U2 - 10.1109/JPHOTOV.2013.2239361

DO - 10.1109/JPHOTOV.2013.2239361

M3 - Article

AN - SCOPUS:84875627372

VL - 3

SP - 702

EP - 708

JO - IEEE Journal of Photovoltaics

JF - IEEE Journal of Photovoltaics

SN - 2156-3381

IS - 2

M1 - 6423774

ER -