Photoinduced carrier lifetime measurement device and photoinduced carrier lifetime measurement method

US10126253B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10126253-B2
Application numberUS-201214364997-A
CountryUS
Kind codeB2
Filing dateDec 11, 2012
Priority dateDec 16, 2011
Publication dateNov 13, 2018
Grant dateNov 13, 2018

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  5. First independent claim

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Abstract

Official abstract text for this publication.

A photoinduced carrier lifetime measurement device includes light sources that respectively apply light that differs in wavelength and generates photoinduced carriers to a semiconductor substrate, a microwave generation section that generates microwaves that are applied to the semiconductor substrate, a detection section that detects the intensity of the microwaves that have passed through the semiconductor substrate, and a calculation section that calculates the effective carrier lifetime corresponding to the wavelength of each light based on the intensity of the microwaves detected when applying each light, and calculates the bulk carrier lifetime and a surface recombination velocity of the semiconductor substrate based on the effective carrier lifetime calculated corresponding to the wavelength of each light.

First claim

Opening claim text (preview).

The invention claimed is: 1. A photoinduced carrier lifetime measurement device that measures an effective carrier lifetime of photoinduced carriers generated in a semiconductor substrate, the photoinduced carrier lifetime measurement device comprising: first and second light sources configured to respectively apply at least two types of continuous light to the semiconductor substrate, the at least two types of continuous light differing in wavelength, and generating the photoinduced carriers; an oscillator configured to generate microwaves that are applied to the semiconductor substrate; a detection section that detects an intensity of the microwaves that have passed through the semiconductor substrate; and a computing device configured to calculate the effective carrier lifetime based on the intensity of the microwaves detected by the detection section, the computing device further configured to calculate the effective carrier lifetime corresponding to the wavelength of each of the at least two types of continuous light based on a change in the intensity of the microwaves detected when applying each of the at least two types of continuous light applied to the semiconductor substrate from respective ones of the first light source and the second light source, and to calculate a bulk carrier lifetime and a surface recombination velocity of the semiconductor substrate based on the effective carrier lifetime calculated corresponding to the wavelength of each of the at least two types of continuous light applied to the semiconductor substrate from the respective ones of the first light source and the second light source, wherein the computing device is further configured to compare a calculated value of the effective carrier lifetime calculated corresponding to the wavelength of each of the at least two types of continuous light applied to the semiconductor substrate from the respective ones of the first light source and the second light source using the bulk carrier lifetime and the surface recombination velocity as parameters with a measured value of the effective carrier lifetime calculated corresponding to the wavelength of each of the at least two types of continuous light applied to the semiconductor substrate from the respective ones of the first light source and the second light source based on the detected intensity of the microwaves while changing values of the parameters to determine the bulk carrier lifetime and the surface recombination velocity when the calculated value of the effective carrier lifetime calculated corresponding to the wavelength of each of the at least two types of continuous light applied to the semiconductor substrate from the respective ones of the first light source and the second light source is closest to the measured value of the effective carrier lifetime calculated corresponding to the wavelength of each of the at least two types of continuous light applied to the semiconductor substrate from the respective ones of the first light source and the second light source. 2. The photoinduced carrier lifetime measurement device as defined in claim 1 , wherein the computing device is further configured to calculate a carrier generation rate based on an effective carrier lifetime of a reference sample, prepared by forming a passivation film on a surface of the semiconductor substrate, that is calculated based on the intensity of the microwaves detected when applying periodic pulsed light to the reference sample, and a sheet carrier density of the reference sample calculated based on the intensity of the microwaves detected when applying continuous light to the reference sample, and to calculate the measured value of the effective carrier lifetime based on a sheet carrier density of the semiconductor substrate as a measurement target sample calculated based on the intensity of the microwaves detected when applying continuous light to the semiconductor substrate, and the carrier generation rate. 3. The photoinduced carrier lifetime measurement device as defined in claim 1 , wherein the at least two types of continuous light differ in absorption coefficient with respect to the semiconductor substrate. 4. The photoinduced carrier lifetime measurement device as defined in claim 3 , wherein the at least two types of continuous light differ in the absorption coefficient with respect to the semiconductor substrate by a factor of at least 2. 5. A photoinduced carrier lifetime measurement device that measures an effective carrier lifetime of photoinduced carriers generated in a semiconductor substrate, the photoinduced carrier lifetime measurement device comprising: first and second light sources configured to respectively apply at least two types of continuous light to the semiconductor substrate, the at least two types of continuous light differing in wavelength, and generating the photoinduced carriers; an oscillator configured to generate microwaves that are applied to the semiconductor substrate; a detection section that detects an intensity of the microwaves that have passed through the semiconductor substrate; and a computing device configured to calculate the effective carrier lifetime based on the intensity of the microwaves detected by the detection section, the computing device further configured to calculate the effective carrier lifetime corresponding to the wavelength of each of the at least two types of continuous light based on a change in the intensity of the microwaves detected when applying each of the at least two types of continuous light applied to the semiconductor substrate from respective ones of the first light source and the second light source, and calculating a bulk carrier lifetime and a surface recombination velocity of the semiconductor substrate based on the effective carrier lifetime calculated corresponding to the wavelength of each of the at least two types of continuous light applied to the semiconductor substrate from the respective ones of the first light source and the second light source, wherein the computing device is further configured to compare a calculated value of the effective carrier lifetime calculated corresponding to the wavelength of each of the at least two types of continuous light applied to the semiconductor substrate from the respective ones of the first light source and the second light source using a depthwise distribution of the bulk carrier lifetime and the surface recombination velocity as parameters with a measured value of the effective carrier lifetime calculated corresponding to the wavelength of each of the at least two types of continuous light applied to the semiconductor substrate from the respective ones of the first light source and the second light source based on the detected intensity of the microwaves while changing values of the parameters to determine the depthwise distribution of the bulk carrier lifetime and the surface recombination velocity when the calculated value of the effective carrier lifetime calculated corresponding to the wavelength of each of the at least two types of continuous light applied to the semiconductor substrate from respective ones of the first light source and the second light source is closest to the measured value of the effective carrier lifetime calculated corresponding to the wavelength of each of the at least two types of continuous light applied to the semiconductor substrate from respective ones of the first light source and the second light source. 6. The photoinduced carrier lifetime measurement device as defined in claim 5 , wherein the computing device is further configured to calculate a carrier generation rate based on an effective carrier lifetime of a reference sample, prepared by forming a passivation film on a surface of the semiconductor substrate, that is

Assignees

Inventors

Classifications

  • H10P74/203Primary

    Structural properties, e.g. testing or measuring thicknesses, line widths, warpage, bond strengths or physical defects · CPC title

  • Physics · mapped topic

  • optically excited · CPC title

  • Electricity · mapped topic

  • Testing semiconductor operation lifetime or reliability, e.g. by accelerated life tests · CPC title

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What does patent US10126253B2 cover?
A photoinduced carrier lifetime measurement device includes light sources that respectively apply light that differs in wavelength and generates photoinduced carriers to a semiconductor substrate, a microwave generation section that generates microwaves that are applied to the semiconductor substrate, a detection section that detects the intensity of the microwaves that have passed through the …
Who is the assignee on this patent?
National Univ Corporation Tokyo Univ Of Agriculture And Technology
What technology area does this patent fall under?
Primary CPC classification H10P74/203. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Nov 13 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).