EP0504944A2

Dynamic fault imaging system using electron beam and method of analyzing fault.

Abstract

A dynamic fault analyzing system discontinuously radiates an electron beam (13a) onto a semiconductor integrated circuit device applied with a test pattern for monitoring a secondary electron beam (13b) produced in the semiconductor integrated circuit device, and the intensity of the secondary electron beam is varied depending upon combination of voltage level and topography of a wiring pattern incorporated in the semiconductor integrated circuit device, wherein a fault is detectable from discrepancy between variation of the secondary electron beam produced in a defective product and variation of the secondary electron beam produced in an excellent product; however, the variation of the secondary electron beam contains topographic information, and the failure origin is easily specified on an image produced on the basis of the topographic information.

EP0504944A2, drawing sheet 1
Sheet 1 of 26

Term

Term ended

Projected expiry passed 23 March 2012, 14.5 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

16 claims: 5 independent, 11 dependent

  1. 1
    A dynamic fault imaging system for a semiconductor integrated circuit device having a plurality of wiring strips (17a/ 17b/ 17c) different in depth from a surface of said semiconductor integrated circuit device:comprising;a) a test pattern generating unit (11h) operative to supply a test pattern to said semiconductor integrated circuit device, and allowing a high voltage level and a low voltage level to be selectively applied to said plurality of wiring strips;b) a radiating unit (11a/ 11j) operative to radiate an electron beam (13a) onto said semiconductor integrated circuit device, a secondary electron beam (13b) being produced in said semiconductor integrated circuit device, the intensity of said secondary electron beam being varied depending upon voltage level on said wiring strips;c) a control unit (11d/ 11i) operative to control relative relation between said semiconductor integrated circuit device and said electron beam for allowing said electron beam to fall onto a surface of said semiconductor integrated device;and d) a detecting unit (11f) operative to monitor said secondary electron beam radiated from said semiconductor integrated circuit device, and forming a detected signal (S1) indicative of variation of the intensity of said secondary electron beam, characterized in that    the intensity of said secondary electron beam is further variable depending upon the depth of said plurality of wiring strips, and in that said dynamic fault imaging system further comprises e) a data processing unit (12) responsive to said detected signal for forming an image indicative of topography of said plurality of wiring strips, and displaying said image on a screen of a display unit (12b).
  2. 5
    A method of imaging a fault, comprising the steps of:a) preparing a semiconductor integrated circuit device having a wiring pattern (17) implemented by a plurality of wiring strips (17a/ 17b/ 17c) different in depth from a surface of said semiconductor integrated circuit device;b) changing relative relation between an electron beam (13a) and a surface of said semiconductor integrated circuit device under application of a test pattern thereto for allowing said semiconductor integrated circuit device to produce a secondary electron beam (13b) therefrom, the intensity of said secondary electron beam being varied depending upon combination of voltage level on said plurality of wiring strips and the depth of each of said plurality of wiring strips;c) monitoring said secondary electron beam for producing a detected signal (S1) indicative of voltage contrast of said plurality of wiring strips and topography of said wiring pattern;d) producing topography data indicative of the topography of said wiring pattern from said detected signal;and e) displaying an image indicative of said topography of said wiring pattern.
  3. 6
    A method of analyzing a fault, comprising the steps of:a) preparing an excellent semiconductor integrated circuit device, a defective semiconductor integrated circuit device and a layout pattern of multi-level wiring strips (17a/ 17b/ 17c;27a/ 27b/ 27c;63) common to said excellent and defective semiconductor integrated circuit devices;b) determining radiation spots (19a to 19d;271 to 277;272/275/ 276/ 277) for layout pattern of said multi-level wiring strips;c) sequentially radiating electron beam onto said radiation spots of said excellent semiconductor integrated circuit device under application of a test pattern for allowing first secondary electron beam to be produced therein, the intensity of said first secondary electron beam being variable with voltage level of said multi-level wiring strips;d) forming an image of voltage contrast (41 to 45) of said multi-level wiring strips of said excellent semiconductor integrated circuit device from said secondary electron beam;e) sequentially radiating electron beams onto said radiation spots of said defective semiconductor integrated circuit device under application of said test pattern for allowing second secondary electron beam to be produced therein, the intensity of said second secondary electron beam being variable with voltage level of said multi-level wiring strips;f) forming an image of voltage contrast (20/ 30/ 46 to 50/ 61) of said multi-level wring strips of said defective semiconductor integrated circuit device;and g) comparing said image of voltage contrast produced for said defective semiconductor integrated circuit device with said image of voltage contrast produced for said defective semiconductor integrated circuit device so as to search for a discrepancy indicative of a failure origin of said defective semiconductor integrated circuit device.
  4. 15
    A method of navigating an analyst of a semiconductor integrated circuit, comprising the steps of:a) acquiring an optical image of a layout pattern and a voltage contrast image of a wiring pattern contained in said layout pattern;b) displaying said optical image and a first pointer in a first window of a screen of a display unit as well as said voltage contrast image and a second pointer in a second window of said screen, said first and second screens being separated from each other;c) monitoring a signal indicative of location of one of said first and second pointers to see whether or not said one of said first and second pointers is moved;d) reading low location of said one of said first and second pointers when moved;e) estimating a corresponding location of the other of said first and second pointers;and f) displaying said first and second pointers at said new location and said corresponding location in said first and second windows.
  5. 16
    A method of navigating an analyst of a semiconductor integrated circuit, comprising the steps of:a) acquiring an optical image of a layout pattern and a voltage contrast image of a wiring pattern contained in said layout pattern;b) displaying said optical image and said voltage contrast image on a screen of a display unit in overlapped manner;c) monitoring a signal indicative of location of one of said optical and voltage contrast images to see whether or not said one of said optical and voltage contrast images is moved;d) reading low location of said one of said optical and voltage contrast images when moved;e) estimating a corresponding location of the other of said optical and voltage contrast images;and f) displaying said optical and voltage contrast images in said new and corresponding locations in overlapped manner.