Abstract
This article reports the concept of a double maximum achievable gain (double- $G_{\mathrm{ max}}$ ) core for the implementation of sub-terahertz high-gain amplifier design. The double- $G_{\mathrm{ max}}$ core is a $G_{\mathrm{ max}}$ core that adopts another linear, lossless, and reciprocal network that satisfies the $G_{\mathrm{ max}}$ condition onto an even number of cascaded transistor-level $G_{\mathrm{ max}}$ cores. It is shown that the double- $G_{\mathrm{ max}}$ core, due to its regenerative nature, can achieve much higher gain per stage than that of the same number of cascaded $G_{\mathrm{ max}}$ cores while satisfying the unconditional stability. Implemented in a 65-nm CMOS process, by adopting the proposed double- $G_{\mathrm{ max}}$ core, 247- and 272-GHz two-stage amplifiers achieve the peak gain of 18 and 15 dB, the gain per stage of 9 and 7.5 dB, and the PAE of 4.44% and 2.37%, respectively, while dissipating 21.5 mW.
| Original language | English |
|---|---|
| Pages (from-to) | 3388-3398 |
| Number of pages | 11 |
| Journal | IEEE Journal of Solid-State Circuits |
| Volume | 56 |
| Issue number | 11 |
| DOIs | |
| State | Published - 1 Nov 2021 |
Keywords
- Amplifier
- CMOS
- double-Gmax
- gain boosting
- maximum achievable gain (Gmax)
- mm-wave
- terahertz (THz)
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