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Item type:Item, Current-Mode First-Order Versatile Filter Using Translinear Current Conveyors with Controlled Current Gain(2023-07-01) ;Kumngern, Montree ;Jongchanachavawat, Wirote ;Phatsornsiri, Punnavich ;Wongprommoon, NatapongKhateb, FabianThis paper offers a new current-mode first-order versatile filter employing two translinear current conveyors with controlled current gain and one grounded capacitor. The proposed filter offers the following features: realization of first-order transfer functions of low-pass, high-pass, and all-pass current responses from single topology, availability of non-inverting and inverting transfer functions for all current responses, electronic control of current gain for all current responses, no requirement of component-matching conditions for realizing all current responses, low-input impedance and high-output impedance which are required for current-mode circuits, and electronic control of the pole frequency for all current responses. The proposed first-order versatile filter is used to realize a quadrature sinusoidal oscillator to confirm the advantage of the new topology. To confirm the functionality and workability of new circuits, the proposed circuit and its application are simulated by the SPICE program using transistor model process parameters NR100N (NPN) and PR100N (PNP) of bipolar arrays ALA400-CBIC-R from AT&T. - Some of the metrics are blocked by yourconsent settings
Item type:Item, Current-Mode Universal First-Order Analog Filter Using CCCIIs(2023-01-01) ;Phatsornsiri, Punnavich ;Torteanchai, Usa ;Wongprommoon, Natapong ;Kumngern, MontreeJongchanachavawat, WiroteThis paper presents a new current-mode first-order universal analog filter using current-controlled current conveyors (CCCIIs). The proposed circuit can realize first-order sections such as all-pass, low-pass, high-pass filters with both non-inverting and inverting transfer functions into single topology. The pole frequency of these filters can be controlled electronically. The output terminals possess high impedance level which is required for cascading of current-mode circuits. The proposed analog filter is verified using SPICE simulation. The CCCII has been simulated using the 0.18 µm CMOS technology with a supply voltage of 1.8 V. The simulation result can show that it agrees well with theory.
