EP2423968A2

Anisotropic conductive layer as a back contact in thin film photovoltaic devices

Abstract

Thin film photovoltaic devices 10 are generally provided. The device 10 can include a transparent conductive oxide layer 14 on a glass substrate 12, an n-type thin film layer 18 on the transparent conductive layer 14, and a p-type thin film layer 20 on the n-type layer 18. The n-type thin film layer 18 and the p-type thin film layer 20 form a p-n junction. An anisotropic conductive layer 22 is applied on the p-type thin film layer 20, and includes a polymeric binder and a plurality of conductive particles 23. A metal contact layer 24 can then be positioned on the anisotropic conductive layer 22.

EP2423968A2, drawing sheet 1
Sheet 1 of 8

Term

Projected expiry 18 August 2031.

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15 claims: 11 independent, 4 dependent

  1. 1
    A thin film photovoltaic device 10, comprising:a glass substrate 12;a transparent conductive oxide layer 14 on the glass substrate 12;an n-type thin film layer 18 on the transparent conductive layer 14;a p-type thin film layer 20 on the n-type layer 18, wherein the n-type thin film layer and the p-type thin film layer form a p-n junction;an anisotropic conductive layer 22 on the p-type thin film layer 20;and, a metal contact layer 24 on the anisotropic conductive layer 22.
  2. 5
    The device 10 of any one of claims 2, 3, or 4, wherein the conductive particles 23 have an average diameter of about 4 µm to about 8 µm, and wherein the anisotropic conductive layer 22 has a thickness of about 4 µm to about 6 µm.
  3. 6
    The device 10 of any one of claims 2 to 5, wherein the conductive particles 23 comprise metal-plated glass beads, metal particles, metal-plated polymeric beads, or combinations thereof.
  4. 7
    The device 10 of any preceding claim, wherein the anisotropic conductive layer 22 further comprises an inert filler material.
  5. 8
    The device 10 of any preceding claim, wherein the anisotropic conductive layer has a resistance in the z direction of about 0.1 ohms to about 100 ohms, and wherein the anisotropic conductive layer has a resistance in both the x- and y-direction of greater than about 100 kohms.
  6. 9
    The device 10 of any preceding claim, wherein the n-type thin film 18 layer comprises cadmium sulfide, and wherein the p-type thin film layer 20 comprises cadmium telluride.
  7. 10
    The device 10 of any preceding claim further comprising:a first isolation scribe 21 extending through the p-type thin film layer 20 to the glass substrate 12 to form isolated cells in the device, wherein the first isolation scribe 21 forms part of the anisotropic conductive layer 22 and is filled with the polymeric binder and the conductive particles 23.
  8. 11
    The device 10 of any preceding claim, wherein at least two adjacent individual conductive particles 23 positioned within the first isolation scribe 21 define a break therebetween to disrupt electrical flow through a plane defined by the anisotropic paste layer 22.
  9. 13
    The device 10 of any one of claims 10, 11, or 12, further comprising:a series connecting scribe 25 forming part of the anisotropic conductive layer 22 to contact the transparent conductive oxide layer 14 to electrically connect adjacent cells to each other in series;and, a second isolation scribe 25 through the metal contact layer 24, the anisotropic conductive layer 22, the p-type thin film layer 20, and the n-type thin film layer 18.
  10. 14
    The device 10 of any one of claims 10, 11, or 12, further comprising:a series connecting scribe 25 through the anisotropic conductive layer 22 to the transparent conductive oxide layer 14, wherein the series connecting scribe forms part of the metal contact layer 24 to electrically connect adjacent cells to each other in series;and, a second isolation scribe 26 through the metal contact layer 24, the anisotropic conductive layer 22, the p-type thin film layer 20, and the n-type thin film layer 18.
  11. 15
    A thin film photovoltaic device 10, comprising:a glass substrate 12;a transparent conductive oxide layer 14 on the glass substrate 12;a resistive transparent buffer layer 16 on the transparent conductive oxide layer 14;a cadmium sulfide thin film layer 18 on the resistive transparent buffer layer 16;a cadmium telluride thin film layer 20 on the cadmium sulfide thin film layer 18;an anisotropic conductive layer 22 on the cadmium telluride thin film layer 20, wherein the anisotropic conductive layer 22 comprises a polymeric binder and a plurality of conductive particles 23, wherein the anisotropic conductive layer 22 has a resistance in the z direction of about 0.1 ohms to about 100 ohms, and wherein the anisotropic conductive layer has a resistance in both the x- and y-direction of greater than about 100 kohms;and, a metal contact layer 24 on the anisotropic conductive layer 22.