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Dive into the research topics where M. K. Pandit is active.

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Featured researches published by M. K. Pandit.


Journal of Lightwave Technology | 2002

A wide-angle X-junction in polymer using truncated-structural branches (TSB)

M. K. Pandit; Hau Ping Chan; C. K. Chow; Kin Seng Chiang; S. Ghosh; Alok K. Das

We present a detailed design and characterization for a compact X-junction we proposed recently. Even at a wide full-branching angle of 1.4/spl deg/, simulation predicts the crosstalk and insertion loss to be -20.1 and 0.2 dB, respectively; the wavelength bandwidth is 230 nm (1390-1620 nm). Devices made in polymer realize -16.1-dB crosstalk and 0.3-dB loss.


Symposium on Integrated Optoelectronics | 2000

Design of a new wide-angle polymer X-junction

M. K. Pandit; Hau Ping Chan; Kin Seng Chiang; S. Ghosh; Alok K. Das

We report the theoretical performance of a digital switch based on a wide-angle, low-loss asymmetric X-junction we recently proposed. At a full-branching angle of 1.2 degrees, the cross-talk and transmission at the zero-voltage state have been -20 and -0.5 dB, respectively. In the switched state, they are -19.5 and -1.1 dB, respectively.


Journal of Optics | 2000

Branching Waveguides with Truncated Structure and Phase Matching

S. Ghosh; R. K. Dutta; Alok K. Das; M. K. Pandit; Hau Ping Chan; Kin Seng Chiang

We have studied mask based process for the microfabrication of polymeric (IXn) branching waveguides both theoretically and experimentaly. The simulation is based on the two-dimensional finite-difference beam propagation method (FDBPM) for the design of the waveguiding devices. The transmission efficiency of truncated structural Y-branch (TSYB) for wide angle (IX2) splitter with a full branching angle 2A greater than 20 is improved compared to that of normal Y-branch (NYB) structure. The maximum transmission at the output is obtained in phase matching between the inner and the outer paths at the point of bending of the truncated structure. An analysis for the optimum phase matching taking symmetric cladding refractive index at the branching zone, is made to improve the transmission efficiency η. For more output ports in (IXn) multiple branching waveguides it is observed that equal output power is not obtained for normal (IXn) branching waveguides. We have designed here a new truncated structural (IX3) branch [TS(IX3)B] structure for obtaining equal transmissions in higher branching angle structure using same phase matching consideration. Phase matching consideration is also followed in designing TS(IXn) B structures. We have fabricated the polymeric devices over Si-SiO2 substrate. The cladding and the waveguiding layers are the Epoxy and PMMA/DRI, respectively. The thickness and refractive index of the waveguiding layers are controlled either by spinning speed or viscosity of the solution and its mixing ratio, respectively. The standard photolithography technique is used here with positive resist coating and followed by dry plasma etching in presence of oxygen. Experiments for the transmission efficiency of the devices are made and compared with the theoretical values.


Design, fabrication, and characterization of photonic devices. Conference | 1999

Tunable long-period fiber gratings for EDFA gain equalization

Kin Seng Chiang; Zhihao Chen; M. K. Pandit

We propose and use for the first time tunable long-period fiber gratings to facilitate the gain equalization of an erbium-doped fiber amplifier (EDFA). The ASE peak of an EDFA around the wavelength 1534 nm was equalized by 7.5 dB and the gain peak by 3 dB.


Microwave and Optical Technology Letters | 2000

Tunable long-period fiber gratings for EDFA gain and ASE equalization

M. K. Pandit; K.S. Chiang; Zhihao Chen; S.P. Li


Microwave and Optical Technology Letters | 1999

A novel wide-angle polymeric X-junction using truncated-structural branches (TSB)

M. K. Pandit; Hau Ping Chan; Kin Seng Chiang; S. Ghosh; Alok K. Das


Microwave and Optical Technology Letters | 2000

A digital optical switch (DOS) in polymer using truncated‐structural X‐branches (TSXB)

M. K. Pandit; Hau Ping Chan; Kin Seng Chiang; S. Ghosh; Alok K. Das


Microwave and Optical Technology Letters | 1999

A wide-angle polymeric Y-junction using gradient-index (GRIN) zones

M. K. Pandit; Hau Ping Chan; K.S. Chiang; S. Ghosh; Alok K. Das


Microwave and Optical Technology Letters | 2000

A polarization-compensated EDFA gain equalizer

M. K. Pandit; K.S. Chiang; S.P. Li; K. W. K. Cheung; Zhihao Chen


Microwave and Optical Technology Letters | 2001

The WDM performance of compact X‐junction switches in polymer

M. K. Pandit; Hau Ping Chan; Kin Seng Chiang; S. Ghosh; Alok K. Das

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Hau Ping Chan

City University of Hong Kong

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Kin Seng Chiang

City University of Hong Kong

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K.S. Chiang

City University of Hong Kong

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Zhihao Chen

City University of Hong Kong

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S.P. Li

City University of Hong Kong

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C. K. Chow

City University of Hong Kong

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K. W. K. Cheung

City University of Hong Kong

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