Switching element, semiconductor memory device including switching element, and method for fabricating the semiconductor memory device
A switching element comprising: a first gate dielectric layer formed over a substrate; a second gate dielectric layer formed over the first gate dielectric layer to overlap a part of the first gate dielectric layer, and including a ferroelectric material; a second gate electrode formed over the second gate dielectric layer; and a first gate electrode located between the first and second gate dielectric layers, and configured to control the second gate dielectric layer to selectively have negative capacitance.
1. A switching element comprising:
a first gate dielectric layer formed over a substrate;
a second gate dielectric layer formed over the first gate dielectric layer to overlap a part of the first gate dielectric layer, and including a ferroelectric material;
a second gate electrode formed over the second gate dielectric layer; and
a first gate electrode located between the first and second gate dielectric layers, and configured to control the second gate dielectric layer to selectively have negative capacitance,
wherein the first gate electrode comprises a first region located between the first and second gate dielectric layers and a second region extended from the first region and neighboring a sidewall of the second gate electrode with a gap provided therebetween.
2. The switching element according to claim 1 , wherein the gap has a line width larger than at least the thickness of the first gate dielectric layer.
3. The switching element according to claim 1 , wherein the second gate dielectric layer comprises a metal oxide with a fluorite structure, which has one or more stable composition regions selected among the group of a cubic system, a tetragonal system, and a monoclinic system.
4. The switching element according to claim 3 , wherein the second gate dielectric layer has a thickness of 1 nm to 20 nm.
5. The switching element according to claim 1 , wherein each of the first and second gate electrodes has an off-voltage level while the switching element is turned off, and a first turn-on voltage and a second turn-on voltage are applied to the first and second gate electrodes, respectively, in a turn-on operation time,
wherein the first turn-on voltage sweeps from the off-voltage level to a first voltage level lower than the off-voltage level, and continuously sweeps from the first voltage level to a second voltage level which is higher than the off-voltage level and has a different polarity from the first voltage level, and
the second turn-on voltage sweeps from the off-voltage level to a third voltage level higher than the off-voltage level.
6. The switching element according to claim 5 , wherein a point of time that the first turn-on voltage sweeps from the off-voltage level to the first voltage level is earlier than a point of time that the second turn-on voltage sweeps from the off-voltage level to the third voltage level.
7. The switching element according to claim 5 , wherein the off-voltage level comprises a ground potential, the first voltage level has a negative polarity, and the second and third voltage levels have a positive polarity.
8. A switching element comprising:
a first gate stack formed over a substrate; and
one or more second gate stacks formed over the substrate and neighboring the first gate stack,
wherein the first gate stack comprises a first gate dielectric layer, a first gate electrode, a second gate dielectric layer and a second gate electrode, which are sequentially stacked over the substrate, the second gate dielectric layer including a ferroelectric material having negative capacitance in response to a bias applied to the first gate electrode, and
the second gate stack comprises a third gate dielectric layer, a fourth gate dielectric layer, and a third gate electrode, which are sequentially stacked over the substrate, the fourth gate dielectric layer including a ferroelectric material having self-induced negative capacitance.
9. The switching element according to claim 8 , wherein the second gate dielectric layer overlaps a part of the first gate dielectric layer, and
the first gate electrode comprises a first region located between the first and second gate dielectric layers and a second region extended from the first region and neighboring a sidewall of the second gate electrode with a gap provided therebetween.
10. The switching element according to claim 9 , wherein the gap has a line width larger than at least the thickness of the first gate dielectric layer, and smaller than the distance between the first and second gate stacks.
11. The switching element according to claim 9 , wherein one sidewall of the second gate electrode faces the third gate electrode, and the other sidewall of the second gate electrode faces the second region of the first gate electrode.
12. The switching element according to claim 8 , wherein each of the second and fourth gate dielectric layers comprises a metal oxide with a fluorite structure, which has one or more stable composition regions selected among the group of a cubic system, a tetragonal system, and a monoclinic system.
13. The switching element according to claim 12 , wherein the second gate dielectric layer has a larger thickness than the fourth gate dielectric layer.
14. The switching element according to claim 13 , wherein the second gate dielectric layer has a thickness of 1 nm to 20 nm, and the fourth gate dielectric layer has a thickness of 1 nm to 10 nm.
15. The switching element according to claim 8 , wherein the first gate stack has a line width equal to or larger than the line width of the second gate stack.
16. The switching element according to claim 8 , wherein each of the first to third gate electrodes has an off-voltage level while the switching element is turned off, and a first turn-on voltage, a second turn-on voltage and a third turn-on voltage are applied to the first to third gate electrodes, respectively, in a turn-on operation time,
wherein the first turn-on voltage sweeps from the off-voltage level to a first voltage level lower than the off-voltage level, and continuously sweeps from the first voltage level to a second voltage level which is higher than the off-voltage level and has a different polarity from the first voltage level, and
the second and third turn-on voltages sweep from the off-voltage level to a third voltage level and a fourth voltage level, respectively, which are higher than the off-voltage level.
17. The switching element according to claim 16 , wherein a point of time that the first turn-on voltage sweeps from the off-voltage level to the first voltage level is earlier than a point of time that the second turn-on voltage sweeps from the off-voltage level to the third voltage level and a point of time that the third turn-on voltage sweeps from the off-voltage level to the fourth voltage level.
18. The switching element according to claim 17 , wherein a point of time that the third turn-on voltage sweeps from the off-voltage level to the fourth voltage level is equal to or earlier than a point of time that the second turn-on voltage sweeps from the off-voltage level to the third voltage level.
19. The switching element according to claim 16 , wherein the off-voltage level comprises a ground potential, the first voltage level has a negative polarity, and the second to fourth voltage levels have a positive polarity.