Tag Archives: device

How SOI Wafers are Advancing MEMS Manufacturing

Advancements in MEMS manufacturing, like many technological markets, is greatly driven by size, cost, and performance. Implementing SOI wafer solutions in the MEMS fabrication process allows production of smaller devices, cheaper costs and higher device performance. Let’s take a look at how SOI wafers are created and how they are advancing MEMS manufacturing.

The main draw to SOI (Silicon-on-Insulator) wafer technology is that it features an electrically insulating layer to protect the micro device. They are created using three layers of material. The first layer is the device layer; thin layers of high-quality silicon where the transistors are formed. The second layer is the insulating layer called the BOX (buried oxide) which is usually made out of silicon dioxide. This layer keeps the transistors isolated from the third layer, the handle layer. The handle layer is made of bulk silicone and provides structural support to the device. SOI wafers can be either thick film or thin film, depending on the application.

SMALLER DEVICES

The first advantage SOI solutions have over bulk silicone wafers is that they allow for creation of smaller devices. The wafer manufacturing process makes the transistors more efficient, allowing for the production of more compact chips and greater chip yield per wafer because the chips can actually be placed closer together.

As consumer technology becomes more compact, MEMS companies strive to develop chips that hold more information in a much smaller space. So, in the MEMs world SOI wafer applications are pretty cool, because not only do they allow for smaller designs, they allow for more flexible designs with greater potential.

CHEAPER COSTS

While the initial cost of is more expensive than bulk silicone wafers, the additional features available with SOI actually create lower manufacturing costs for a better, more advanced product. For instance, SOI wafers with pre-etched cavities are available and they simplify the MEMS manufacturing process by lowering development time. SOI wafers also allow production of higher quality chips without the need to purchase and implement more expensive manufacturing equipment.

With an increasing number of MEMS foundries adopting SOI technology and manufacturing processes as a standard, the prices of these wafers have decreased substantially and continue to decrease.

BETTER PERFORMANCE

The final selling point for SOI is that it offers a solution to create superior products. The insulating BOX layer reduces electrical current leakage, which in turn reduces unnecessary power consumption and gives the transistor better performance. It also reduces heat, allowing for these MEMS devices to be used in higher-temperature environments with no ill effects.

The insulating layer also blocks out signal noise which not only allows the transistors’ switching speeds to increase, but also results in a more precise product.

As you can see, SOI wafers are advancing MEMS manufacturing in a big way. Many engineering companies as well as Universities use SOI wafers for research, development and testing. Implementing SOI solutions in the manufacturing of silicon wafers allows for smaller, better performing devices with a more diverse range of uses at a better cost for both the manufacturer and purchaser. In this way, SOI wafers are impacting MEMS fabrication in a positive and exciting way, while opening possibilities in new applications.

How SOI Wafers are Advancing MEMS Manufacturing

Advancements in MEMS manufacturing, like many technological markets, is greatly driven by size, cost, and performance. Implementing SOI wafer solutions in the MEMS fabrication process allows production of smaller devices, cheaper costs and higher device performance. Let’s take a look at how SOI wafers are created and how they are advancing MEMS manufacturing.

The main draw to SOI (Silicon-on-Insulator) wafer technology is that it features an electrically insulating layer to protect the micro device. They are created using three layers of material. The first layer is the device layer; thin layers of high-quality silicon where the transistors are formed. The second layer is the insulating layer called the BOX (buried oxide) which is usually made out of silicon dioxide. This layer keeps the transistors isolated from the third layer, the handle layer. The handle layer is made of bulk silicone and provides structural support to the device. SOI wafers can be either thick film or thin film, depending on the application.

SMALLER DEVICES

The first advantage SOI solutions have over bulk silicone wafers is that they allow for creation of smaller devices. The wafer manufacturing process makes the transistors more efficient, allowing for the production of more compact chips and greater chip yield per wafer because the chips can actually be placed closer together.

As consumer technology becomes more compact, MEMS companies strive to develop chips that hold more information in a much smaller space. So, in the MEMs world SOI wafer applications are pretty cool, because not only do they allow for smaller designs, they allow for more flexible designs with greater potential.

CHEAPER COSTS

While the initial cost of is more expensive than bulk silicone wafers, the additional features available with SOI actually create lower manufacturing costs for a better, more advanced product. For instance, SOI wafers with pre-etched cavities are available and they simplify the MEMS manufacturing process by lowering development time. SOI wafers also allow production of higher quality chips without the need to purchase and implement more expensive manufacturing equipment.

With an increasing number of MEMS foundries adopting SOI technology and manufacturing processes as a standard, the prices of these wafers have decreased substantially and continue to decrease.

BETTER PERFORMANCE

The final selling point for SOI is that it offers a solution to create superior products. The insulating BOX layer reduces electrical current leakage, which in turn reduces unnecessary power consumption and gives the transistor better performance. It also reduces heat, allowing for these MEMS devices to be used in higher-temperature environments with no ill effects.

The insulating layer also blocks out signal noise which not only allows the transistors’ switching speeds to increase, but also results in a more precise product.

As you can see, SOI wafers are advancing MEMS manufacturing in a big way. Many engineering companies as well as Universities use SOI wafers for research, development and testing. Implementing SOI solutions in the manufacturing of silicon wafers allows for smaller, better performing devices with a more diverse range of uses at a better cost for both the manufacturer and purchaser. In this way, SOI wafers are impacting MEMS fabrication in a positive and exciting way, while opening possibilities in new applications.

Update Drivers Automatically with Smart Driver Updater

Drivers are some of the most important software on your computer. They allow the Windows operating system to communicate with hardware devices so that they can work correctly. Most hardware devices require drivers made by their manufacturers to be installed. When there is no driver installed on your computer for a device that requires it, the device simply will not work at all. In some cases, however, Windows automatically installs some very basic generic drivers of its own, allowing you to enjoy limited functionality only from the device. There are also certain types of hardware which do not require any additional drivers to be installed, since they are natively supported by the operating system. These include things like processors, hard disks and mass storage devices. However, just about every computer running Windows still needs third-party drivers for hardware such as printers, scanners, sound cards, graphics cards and various other devices.

While the importance of drivers should not be underestimated, neither should they simply be installed and ignored. When you upgrade your computer with, for example, a new graphics card, you may be tempted to install the drivers and any optional software from the CD or DVD that came with the device. This is what most users do, but it is not recommended. These drivers tend to be out of date, and out of date drivers are notorious for causing problems. Drivers which are old tend to cause compatibility problems and other issues. For example, if your graphics card has an outdated driver, some games released after that driver may experience problems or even refuse to work at all.

Most reputable hardware manufacturers release updated drivers on a fairly regular basis. These drivers may not only overcome compatibility issues with other hardware, software and newer editions of Windows; they may also address critical security flaws, fix bugs found in previous versions of the driver and sometimes even add new features. With the latest drivers installed for all hardware devices which require them, you can ensure that you are getting the most out of your computer.

Updating drivers is not necessarily a straightforward task, however, particularly if you want (which you should) to keep all drivers updated as soon as new releases come out. For novice users, installing hardware drivers manually can sometimes be risky as well and, in worst case scenarios, you can even end up with a completely unworkable computer. It also takes a great deal of time to manually keep all drivers up to date.

Fortunately, there is a reliable solution for this situation. Smart Driver Updater is a tool which automatically scans your computer’s device manager and then checks online to see if there are any driver updates available. The program supports thousands of different devices, so you are not likely to have any component in your computer which it does not recognize. Once it finds the updated drivers, it will automatically download and install them. Minimal user interaction is needed thanks to the fact that this highly user-friendly software automates just about everything. Learn more at smartpctools.com/driver_updater.