EP0902481A2

Fabrication method for thin film transistor with reduced parasitic capacitance

Abstract

An improved thin film transistor structure is provided having no source/gate or drain/gate overlap. A laser doping technique is applied to fabricate such transistors. Eliminating source/gate and drain/gate overlap significantly reduces or eliminates parasitic capacitance and feed-through voltage between source and gate. Short-channel a-Si:H thin film transistors may be obtained having high field effect mobilities. Improved pixel performance and pixel-to-pixel uniformity is provided.

EP0902481A2, drawing sheet 1
Sheet 1 of 20

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Projected expiry passed 17 August 2018, 8.1 years ago.

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10 claims: 8 independent, 2 dependent

  1. 1
    A semiconductor structure, comprising:a gate region, formed in a first plane, having first gate edge lying in a first edge plane and a second gate edge lying in a second edge plane, each said first and second edge planes being generally perpendicular to said first plane;a source region having a first source edge lying in said first edge plane;a drain region having a first drain edge lying in said second edge plane;and an optical filter island located between said source and drain regions.
  2. 3
    The semiconductor structure of claims 1 or 2, further comprising a source electrode in electrical communication with said source region and a drain electrode in electrical communication with said drain region.
  3. 5
    The semiconductor structure of any of claims 2 to 4, wherein said structure is provided with a transistor channel in said active layer.
  4. 6
    The semiconductor structure of any of claims 1 to 5, wherein said source region and said drain region are formed by laser doping employing a laser having a wavelength λ, and further wherein said optical filter island is comprised of at least a first layer of material having an index of refraction η and an optical thickness T equal to T = 1 4 λ η + m 2 λ η where m is a positive integer.
  5. 7
    The semiconductor structure of any of claims 1 to 6, wherein said optical filter island further includes a second layer of material having a different index of refraction than said first layer of material.
  6. 8
    The semiconductor structure of any of claims 1 to 7, wherein said optical filter island is at least 80% transmissive of radiation at 400 nm, and at least 80% reflective of radiation at 308 nm.
  7. 9
    The semiconductor structure of any of claims 1 to 8, wherein said optical filter island is comprised of at least one pair of alternating layers of silicon nitride and silicon dioxide.
  8. 10
    The semiconductor structure of any of claims 2 to 9, wherein said active layer has sidewalls, said sidewalls being selectively etched to remove contaminants therefrom to thereby reduce sidewall leakage current between the source region and the drain region.