Oxide semiconductor film, method for forming oxide semiconductor film, and semiconductor device
View Patent ↗A crystalline oxide semiconductor film and a semiconductor device including the oxide semiconductor film are provided. One embodiment of the present invention is an oxide semiconductor film including a plurality of flat-plate particles each having a structure in which layers including a gallium atom, a zinc atom, and an oxygen atom are provided over and under a layer including an indium atom and an oxygen atom. In the semiconductor film, the plurality of flat-plate particles face in random directions, and a crystal boundary is not observed using a transmission electron microscope.
1. An oxide semiconductor film comprising:
a plurality of plate particles each having a structure in which layers including a gallium atom, a zinc atom, and an oxygen atom are provided over and under a layer including an indium atom and an oxygen atom,
wherein the plurality of plate particles is arranged irregularly.
2. The oxide semiconductor film according to claim 1 , wherein a crystal boundary in the oxide semiconductor film is not observed by using a transmission electron microscope.
3. The oxide semiconductor film according to claim 1 , wherein the plurality of plate particles each has a thickness of greater than or equal to 0.5 nm and less than or equal to 0.9 nm and an equivalent circle diameter of a plane of greater than or equal to 1 nm and less than or equal to 3 nm.
4. The oxide semiconductor film according to claim 1 , wherein the plurality of plate particles each has regularity in atomic arrangement.
5. The oxide semiconductor film according to claim 1 , wherein a plurality of circumferentially distributed spots is observed in a nanobeam electron diffraction pattern of the oxide semiconductor film.
6. The oxide semiconductor film according to claim 5 , wherein a probe diameter of an electron beam is larger than or equal to 1 nm and smaller than or equal to 30 nm.
7. An semiconductor device comprising:
a gate electrode;
an oxide semiconductor film;
a gate insulating layer between the gate electrode and the oxide semiconductor film; and
a source electrode and a drain electrode each electrically connected to the oxide semiconductor film,
wherein the oxide semiconductor film comprises a plurality of plate particles each having a structure in which layers including a gallium atom, a zinc atom, and an oxygen atom are provided over and under a layer including an indium atom and an oxygen atom, and
wherein the plurality of plate particles is arranged irregularly.
8. The semiconductor device according to claim 7 , wherein a crystal boundary in the oxide semiconductor film is not observed by using a transmission electron microscope.
9. The semiconductor device according to claim 7 , wherein the plurality of plate particles each has a thickness of greater than or equal to 0.5 nm and less than or equal to 0.9 nm and an equivalent circle diameter of a plane of greater than or equal to 1 nm and less than or equal to 3 nm.
10. The semiconductor device according to claim 7 , wherein the plurality of plate particles each has regularity in atomic arrangement.
11. The semiconductor device according to claim 7 , wherein a plurality of circumferentially distributed spots is observed in a nanobeam electron diffraction pattern of the oxide semiconductor film.
12. The semiconductor device according to claim 11 , wherein a probe diameter of an electron beam is larger than or equal to 1 nm and smaller than or equal to 30 nm.
13. A method for forming an oxide semiconductor film, comprising steps of:
separating a plurality of plate particles from a target including indium, gallium, and zinc, wherein the plurality of plate particles each has a structure in which layers including a gallium atom, a zinc atom, and an oxygen atom are provided over and under a layer including an indium atom and an oxygen atom; and
depositing the plurality of plate particles over a substrate irregularly.
14. The method for forming an oxide semiconductor film according to claim 13 , wherein a temperature of the substrate is higher than or equal to 15° C. and lower than or equal to 35° C.
15. The method for forming an oxide semiconductor film according to claim 13 , wherein the target including indium, gallium, and zinc has a composition formula of InGaZnO 4 .
16. The method for forming an oxide semiconductor film according to claim 13 , wherein the separation of the plurality of plate particles occurs by collision of an ion with the target.
17. The oxide semiconductor film according to claim 1 , wherein a halo pattern is observed in a selected-area electron diffraction pattern of the oxide semiconductor film.
18. The semiconductor device according to claim 7 , wherein a halo pattern is observed in a selected-area electron diffraction pattern of the oxide semiconductor film.
19. The method for forming an oxide semiconductor film according to claim 13 , wherein a halo pattern is observed in a selected-area electron diffraction pattern of the oxide semiconductor film.