Semiconductor memory device and method of manufacturing the same
A semiconductor memory device includes finger structures arranged in a first direction, a bit line disposed on one side in a stacking direction with respect to the finger structures, and an inter-finger insulating layer disposed between two finger structures. A first finger structure includes conductive layers, a semiconductor layer opposed to the conductive layers, a first insulating layer disposed between the bit line and the conductive layers, and a second insulating layer disposed between the first insulating layer and the conductive layers. A distance between the first insulating layer and the inter-finger insulating layer at a position corresponding to a surface on a side of the bit line of the first insulating layer is larger than a distance between the second insulating layer and the inter-finger insulating layer at a position corresponding to a surface on an opposite side of the bit line of the second insulating layer.
1 . A semiconductor memory device comprising:
a plurality of finger structures arranged in a first direction;
a bit line extending in the first direction and disposed on one side in a stacking direction intersecting with the first direction with respect to the plurality of finger structures; and
an inter-finger insulating layer disposed between a first finger structure and a second finger structure adjacent in the first direction of the plurality of finger structures,
the first finger structure including:
a plurality of conductive layers arranged in the stacking direction;
a semiconductor layer extending in the stacking direction and opposed to the plurality of conductive layers, the semiconductor layer being electrically connected to the bit line;
an electric charge accumulating film disposed between the plurality of conductive layers and the semiconductor layer;
a first insulating layer disposed between the bit line and the plurality of conductive layers, the first insulating layer containing nitrogen (N) and silicon (Si); and
a second insulating layer disposed between the first insulating layer and the plurality of conductive layers, wherein
the inter-finger insulating layer extends in the stacking direction from a position closer to the bit line than the plurality of conductive layers to a position farther from the bit line than the plurality of conductive layers along a surface on a side of the second finger structure in the first direction of the plurality of conductive layers,
the first insulating layer and the second insulating layer are made of mutually different materials, and
when a distance in the first direction between the first insulating layer and the inter-finger insulating layer at a first position corresponding to a surface on a side of the bit line in the stacking direction of the first insulating layer is a first distance, and
when a distance in the first direction between the second insulating layer and the inter-finger insulating layer at a second position corresponding to a surface on an opposite side of the bit line in the stacking direction of the second insulating layer is a second distance,
the first distance is larger than the second distance.
2 . The semiconductor memory device according to claim 1 , further comprising
a high-dielectric-constant insulating layer disposed between the inter-finger insulating layer and the second insulating layer.
3 . The semiconductor memory device according to claim 1 , further comprising
at least one of a conductive member and a semiconductor member disposed between the inter-finger insulating layer and the second finger structure, wherein
the at least one of the conductive member and the semiconductor member has an end portion on a side of the bit line in the stacking direction which has a position in the stacking direction approximately coinciding with the first position.
4 . The semiconductor memory device according to claim 1 , wherein
the inter-finger insulating layer has an end portion on a side of the bit line in the stacking direction which has a position in the stacking direction approximately coinciding with the first position.
5 . The semiconductor memory device according to claim 1 , wherein
the inter-finger insulating layer has a surface on a side of the first finger structure in the first direction which includes:
a first part continuing in the stacking direction from the second position to a third position between the first position and the second position along a surface on a side of the second finger structure in the first direction of the second insulating layer; and
a second part continuing in the stacking direction from the third position to the first position, and
in the first direction, the second part has an end portion on an opposite side of the bit line in the stacking direction which is disposed on a side of the second finger structure in the first direction with respect to an end portion on a side of the bit line in the stacking direction of the first part.
6 . The semiconductor memory device according to claim 5 , further comprising
a third insulating layer disposed on surfaces on a side of the second finger structure in the first direction of the second insulating layer and the first insulating layer, wherein
the third insulating layer extends in the stacking direction from the third position or a position on a side of the bit line in the stacking direction with respect to the third position to the first position.
7 . The semiconductor memory device according to claim 6 , wherein
the third insulating layer has an end portion on a side of the bit line in the stacking direction which has a position in the stacking direction approximately coinciding with the first position.
8 . The semiconductor memory device according to claim 5 , wherein
when a minimum value of a distance in the first direction between the first insulating layer and the inter-finger insulating layer from the first position to a fourth position corresponding to a surface on an opposite side of the bit line in the stacking direction of the first insulating layer is a first minimum distance, and
when a maximum value of a distance in the first direction between the second insulating layer and the inter-finger insulating layer from the second position to the third position is a first maximum distance,
the first minimum distance is larger than the first maximum distance.
9 . The semiconductor memory device according to claim 1 , wherein
the inter-finger insulating layer has a surface on a side of the first finger structure in the first direction which continues in the stacking direction from the second position to the first position.
10 . The semiconductor memory device according to claim 9 , further comprising
a fourth insulating layer disposed on a surface on a side of the second finger structure in the first direction of the first insulating layer, wherein
the fourth insulating layer has an end portion on an opposite side of the bit line in the stacking direction which is in contact with the second insulating layer.
11 . The semiconductor memory device according to claim 10 , wherein
the fourth insulating layer has an end portion on a side of the bit line in the stacking direction which has a position in the stacking direction approximately coinciding with the first position.
12 . The semiconductor memory device according to claim 10 , wherein
when a minimum value of a distance in the first direction between the first insulating layer and the inter-finger insulating layer from the first position to a fourth position corresponding to a surface on an opposite side of the bit line in the stacking direction of the first insulating layer is a second minimum distance, and
when a maximum value of a distance in the first direction between the second insulating layer and the inter-finger insulating layer from the second position to a fifth position corresponding to a surface on an opposite side of the bit line in the stacking direction of the fourth insulating layer is a second maximum distance,
the second minimum distance is larger than the second maximum distance.
13 . The semiconductor memory device according to claim 1 , further comprising
a via-contact electrode connected to an end portion on a side of the bit line in the stacking direction of the semiconductor layer, wherein
the via-contact electrode has an end portion on a side of the bit line in the stacking direction which has a position in the stacking direction closer to the bit line than the first position.
14 . The semiconductor memory device according to claim 1 , further comprising
a via-contact electrode connected to an end portion on a side of the bit line in the stacking direction of the semiconductor layer, wherein
the via-contact electrode has an end portion on a side of the bit line in the stacking direction which has a position in the stacking direction approximately coinciding with the first position.
15 . A semiconductor memory device comprising:
a plurality of first conductive layers arranged in a stacking direction;
a bit line disposed on one side in the stacking direction with respect to the plurality of first conductive layers and extending in a first direction intersecting with the stacking direction;
a plurality of second conductive layers disposed at a position between the plurality of first conductive layers and the bit line, the position overlapping with the plurality of first conductive layers viewing from the stacking direction, the plurality of second conductive layers being arranged in the first direction;
a semiconductor layer extending in the stacking direction and opposed to the plurality of first conductive layers and one of the plurality of second conductive layers, the semiconductor layer being electrically connected to the bit line;
an electric charge accumulating film disposed between the plurality of first conductive layers and the semiconductor layer;
a plurality of first insulating layers disposed between the semiconductor layer and the bit line in the stacking direction and arranged in the first direction corresponding to the plurality of second conductive layers, the plurality of first insulating layers containing nitrogen (N) and silicon (Si);
a plurality of second insulating layers disposed between the plurality of first insulating layers and the plurality of second conductive layers and arranged in the first direction corresponding to the plurality of second conductive layers; and
an inter-stacked structure insulating layer extending in the stacking direction from a position closer to the bit line than the plurality of second conductive layers to a position farther from the bit line than the plurality of first conductive layers along side surfaces in the first direction of the plurality of first conductive layers, one of the plurality of second conductive layers, one of the plurality of first insulating layers, and one of the plurality of second insulating layers, wherein
the plurality of first insulating layers and the plurality of second insulating layers are made of mutually different materials, and
when a distance in the first direction between the one of the plurality of first insulating layers and the inter-stacked structure insulating layer at a first position corresponding to surfaces on a side of the bit line in the stacking direction of the plurality of first insulating layers is a first distance, and
when a distance in the first direction between the one of the plurality of second insulating layers and the inter-stacked structure insulating layer at a second position corresponding to surfaces on an opposite side of the bit line in the stacking direction of the plurality of second insulating layers is a second distance,
the first distance is larger than the second distance.
16 . The semiconductor memory device according to claim 15 , further comprising
an inter-conductive layer insulating layer extending in the stacking direction and disposed between two second conductive layers adjacent in the first direction of the plurality of second conductive layers, wherein
one of the plurality of first insulating layers has a surface on a side of the bit line in the stacking direction which has a position in the stacking direction approximately coinciding with a position in the stacking direction of an end portion on a side of the bit line in the stacking direction of the inter-conductive layer insulating layer.