🤖 AI Summary
This study addresses the accurate characterization of high-frequency performance in dual-port bridged-T networks for microstrip high-pass filters. By establishing a parametric model based on transmission and scattering matrices, the authors derive the S-parameters and analyze their magnitude and phase responses. It is found that when the inductances satisfy \( L_1 = L_2 \), the \( S_{11} \) transfer function contains only odd-order terms, enabling structural simplification and yielding a high-performance high-pass response. Leveraging frequency normalization and Keysight ADS electromagnetic simulation, a filter with a 1 GHz cutoff frequency is designed, demonstrating excellent roll-off characteristics at the passband edge, with slopes of \( S_{11} \) and \( S_{21} \) reaching −30 dB/GHz and −32 dB/GHz, respectively.
📝 Abstract
The purpose of this study is to characterize a two-port Bridged-T network using transmission (T) and scattering (S) matrices. Using mathematical derivations, scattering parameters including S11, S12, S21, and S22 have been derived from the T and S matrices to permit a detailed investigation of the network's performance. As two of the most relevant parameters in the design of microstrip filters, both the magnitude and phase of S11 and S21 have been parametrically calculated after normalizing the frequency. Furthermore, when the inductors L1 and L2 are identical, all even coefficients of the numerator polynomial in the S11 transfer function are eliminated, leaving only the odd coefficients behind. Based on this feature, the bridged-T circuit is designed to operate as a high-pass filter. Therefore, the magnitude and phase of both S11 and S21 have been simulated for the designed filter with a corner frequency of 1 GHz. Simulation results performed by Keysight ADS show that S11 and S21 for the high-pass filter built upon the bridged-T network have sharp roll-off ratios of -30dB/GHz and -32dB/GHz respectively.