IP Library › Granted Patent US 10,115,773
Granted Patent B2
US 10,115,773 · App. 15/356,608 · Granted Oct 30, 2018

Hybrid high electron mobility transistor and active matrix structure

Inventors: Ali Afzali-Ardakani (Ossining, NY); Bahman Hekmatshoartabari (White Plains, NY); Devendra K. Sadana (Pleasantville, NY); Davood Shahrjerdi (White Plains, NY)
Assignee: International Business Machines Corporation
H01L27/286H01L27/1214H01L27/1251H01L27/3274H01L29/408H01L29/435H01L29/66431H01L29/778H01L29/7786H01L51/0508H01L51/0529H01L51/0541H01L51/0558H01L51/0587H01L51/105H01L51/107H05B33/0896H05B37/0209H01L27/1218H01L27/1225H01L29/432H01L29/78603H01L29/78654
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Quick Facts
Patent No.
US 10,115,773
App. No.
15/356,608
Granted
Oct 30, 2018
Kind
B2
Abstract

Hybrid high electron mobility field-effect transistors including inorganic channels and organic gate barrier layers are used in some applications for forming high resolution active matrix displays. Arrays of such high electron mobility field-effect transistors are electrically connected to thin film switching transistors and provide high drive currents for passive devices such as organic light emitting diodes. The organic gate barrier layers are operative to suppress both electron and hole transport between the inorganic channel layer and the gate electrodes of the high electron mobility field-effect transistors.

Claims (12)

1. A high electron mobility field-effect transistor comprising:

an inorganic semiconductor layer;

a gate electrode;

first and second ohmic contacts operatively associated with the inorganic semiconductor layer, and

an organic gate barrier layer operatively associated with the gate electrode, the organic gate barrier layer being positioned between the gate electrode and the inorganic semiconductor layer and including one or more organic semiconductor layers operative to block electrons and holes.

2. The high electron mobility field-effect transistor of claim 1 , wherein the inorganic semiconductor layer comprises an n-type crystalline silicon layer.

3. The high electron mobility field-effect transistor of claim 2 , wherein the gate electrode includes a layer of high workfunction material.

4. The high electron mobility field-effect transistor of claim 3 , wherein the gate junction structure further includes a discrete organic passivation layer directly contacting the inorganic semiconductor layer.

5. The high electron mobility field-effect transistor of claim 3 , wherein the first organic semiconductor layer adjoins the gate electrode and the second organic semiconductor layer is positioned between the first organic semiconductor layer and the inorganic semiconductor layer.

6. The high electron mobility field-effect transistor of claim 3 , wherein the inorganic semiconductor layer comprises a crystalline silicon layer, further including a buried oxide layer adjoining the inorganic semiconductor layer.

7. The high electron mobility field-effect transistor of claim 1 , wherein the inorganic semiconductor layer is p-type.

8. The high electron mobility field-effect transistor of claim 1 , further including an organic passivation layer in direct contact with the inorganic semiconductor layer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 20, 2016
From: AFZALI-ARDAKANI, ALI; HEKMATSHOARTABARI, BAHMAN; SADANA, DEVENDRA K.; SHAHRJERDI, DAVOOD
To: INTERNATIONAL BUSINESS MACHINES CORPORATION
Reel/Frame 040382/0360 →
Continuity (2)
Continuation 14697596 · Apr 27, 2015
Related Publication 20170069689A1 · Mar 9, 2017