LTC1662
LTC1662 is Ultralow Power Dual 10-Bit DAC manufactured by Linear Technology.
Features n Ultralow Power: 1.5µA (Typ) ICC per DAC Plus 0.05µA Sleep Mode for Extended Battery Life n Tiny: Two 10-Bit DACs in an 8-Lead MSOP- Half the Size of an SO-8 n Wide 2.7V to 5.5V Supply Range n Double Buffered for Simultaneous DAC Updates n Rail-to-Rail Voltage Outputs Drive 1000p F n Reference Range Includes Supply for Ratiometric
0V to VCC Output n Reference Input Impedance Is Code-Independent
(7.1MΩ Typ)- Eliminates External Buffers n 3-Wire Serial Interface with Schmitt Trigger Inputs n Differential Nonlinearity: ±0.75LSB Max
Applications n Mobile munications n Portable Battery-Powered Instruments n Remote or Inaccessible Adjustments n Digitally Controlled Amplifiers and Attenuators n Factory or Field Calibration
L, LT, LTC, LTM, Linear Technology and the Linear logo are registered trademarks of Linear Technology Corporation. All other trademarks are the property of their respective owners.
LTC1662 Ultralow Power, Dual
10-Bit DAC in MSOP
Description
The LTC®1662 is an ultralow power, fully buffered voltage output, dual 10-bit digital-to-analog converter (DAC). Each DAC channel draws just 1.7µA (typ) total supply-plusreference operating current, yet is capable of supplying DC output currents in excess of 1m A and reliably driving capacitive loads of up to 1000p F. A programmable sleep mode further reduces total operating current to 0.05µA. Linear Technology’s proprietary, inherently monotonic architecture provides excellent linearity and an exceptionally small external form factor. The double-buffered input logic provides simultaneous update capability and can be used to write to the DACs without interrupting sleep mode. With its tiny operating current and exceptionally small size, the LTC1662 is ideal for use in the most powerconstrained products. For most designs, there is no perceptible impact on the power budget; the LTC1662 draws many times less current than even a trimpot, while providing buffered, low impedance (0.5Ω typical, VCC =...