1. Field of Invention
The present invention relates to fabrication of a micro-electro-mechanical systems (MEMS) device. More particularly, the present invention relates to a technology to release diaphragm of a MEMS device.
2. Description of Related Art
A MEMS device, such as MEMS microphone, basically includes two main structure parts that one is a diaphragm and another one is backplate. The diaphragm can be moved caused by external factors.
Taking MEMS microphone as an example, the backplate has venting holes to connect to a cavity, which usually receives acoustic signal. The variance of the air pressure from the acoustic signal would cause the vibration of the diaphragm, so that the diaphragm can sense the acoustic signal. When the diaphragm is vibrated by the acoustic signal, the distance between the diaphragm and the backplate, which is steadily still, would also be changed correspondingly, and a variance of capacitance between the diaphragm and the backplate in responding to the acoustic signal can be converted into electric signal for subsequent use by the electronic system on which the MEMS microphone is implemented.
As the operating mechanism of the MEMS device, the sensitivity is depending on how the diaphragm to respond to acoustic signal or any force factor asserted on the diaphragm. In semiconductor fabrication procedure, the diaphragm is usually formed with the dielectric layer, which may involve multiple sub dielectric layers as known in the art. At the stage of semi-finished product before the diaphragm is released, the diaphragm is embedded in the dielectric layer. It usually needs a wet etching process to etch a portion of the dielectric material, so as to release the diaphragm, and therefore allow the diaphragm to sense the detected force factor, such as the air pressure of the acoustic signal.
The sensitivity of the MEMS device is quite related to the capability of shift of the diaphragm. However, during the wet etching process, the etchant relative to the silicon substrate having the cavity is hydrophobic or repellent, so a bubble may occur on the surface of the substrate. The bubble may cover a portion of surface of the dielectric layer, and may result in poor condition for the wet etching process on the dielectric material.
The invention provides a method for releasing a diaphragm of a micro-electro-mechanical systems (MEMS) device at a stage of semi-finished product. As a result, bubbles existing at the dead corner of a cavity of the MEMS device can be effectively reduced. The wet etching process can be performed in better quality.
The invention provides a method for releasing a diaphragm of a micro-electro-mechanical systems (MEMS) device at a stage of semi-finished product. The method includes pre-wetting the MEMS device in a pre-wetting solution to at least pre-wet a sidewall surface of a cavity of the MEMS device. Then, a wetting process after the step of pre-wetting the MEMS device is performed to etch a dielectric material of a dielectric layer for holding the diaphragm, wherein a sensing portion of the diaphragm is released from the dielectric layer.
It is to be understood that both the foregoing general description and the following detailed description are exemplary, and are intended to provide further explanation of the invention as claimed.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
In the invention, the method to etch the dielectric material for releasing the diaphragm of a MEMS device is proposed. Embodiments are provided below for describing the invention but not for limiting the invention.
Remarkably, the performance of the diaphragm 110 to sense the external signal is one of the main factors to decide the sensitivity of the MEMS. If the diaphragm 110 in wet etching process is not well released, the performance of the diaphragm 110 is then reduced.
Before describing the etching process proposed by the invention, a bubble issue in etching process has been investigated.
In
In better investigation on the formation of bubble, the reasons are following. In general, the solution for etching the silicon oxide is dilute HF (HF+H2O) or BOE (NH4F+HF+H2O). However, such wet etchant to etch the silicon oxide has to pass by the silicon surface and reach the silicon oxide layer in many cases on MEMS application. Unfortunately, the silicon surface is hydrophobic for those etching solution.
Further, if it is to etch the silicon oxide layer via the cavity 102 of silicon or semiconductor, the bubble is very easy to form in the cavity and stop the etchant to reach the silicon oxide when the MEMS device is immerged into the buffered oxide etch solution (BOE) or dilute HF. The high surface tension for the buffered oxide etch solution causes hydrophobicity to the silicon surface. As a result, the bubble very possible exits if the MEMS device is directly performed with the wet etching process by the wet etchant.
After then, to complete the etching process, in the step S102, the MEMS device is further put in water tank for cleaning. In step S104, the MEMS device is further put in an isopropyl alcohol (IPA) tank for further clean, in which the IPA material has surface tension lower than that of the water to avoid the diaphragm 110 to stick on the backplate 104. After then, the MEMS device is dried in step S106.
As can be seen in the wet etching process of
To solve the bubble issue, the surfactants can be added into the wet etchant (e.g. BOE, or dilute HF) to improve the wettability and reduce the surface tension of etchant. However, such surfactant may change the etching rate and is hard to change the characteristic of hydrophobicity of silicon surface.
Even further, if the wet etching process includes megasonic or ultrasonic, the bubble may be removed. However, the MEMS structure will be damaged.
The invention has proposed a pre-wetting process before the wet etching process.
In
The pre-wetting solution can enter the cavity 102 to wet the semiconductor surface of the cavity, in which the pre-wetting solution does not necessary to etch or react to the dielectric material. Due to low surface tension, the bubble does not occur on the semiconductor surface of the cavity.
In step S202, as also referring to
In step S204, the MEMS is cleaned by water. In step S206, the MEMS device is further cleaned by another liquid, which has surface tension lower than the water, such as methyl alcohol, ethyl alcohol, isopropyl alcohol, alcohols, or hydrofluoroether isopropyl alcohol. The step S206 can avoid the diaphragm 110 to stick with the backplate. In step S208, the MEMS device is then dried.
The invention has proposed the pre-wetting process to the MEMS device. The occurrence of bubbles in cavity can be effectively suppressed and the performance of wet etching process can be improved.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing descriptions, it is intended that the present invention covers modifications and variations of this invention if they fall within the scope of the following claims and their equivalents.