Related Experiment Video
Updated: Feb 21, 2026

Transmission of Multiple Signals through an Optical Fiber Using Wavefront Shaping
Published on: March 20, 2017
Ultra-compact and broadband arbitrary-to-single-mode power divider-based architecture for flexible on-chip mode
None:
We propose a versatile on-chip mode manipulation architecture based on arbitrary-to-single-mode power dividers (ASPDs), enabling flexible mode conversion and routing in multimode photonic systems. The architecture comprises two oppositely cascaded ASPD units arranged in a Mach-Zehnder-interferometer-like configuration, leveraging standard single-mode components such as phase shifters and mode routers to achieve highly flexible multimode manipulation. This approach offers two key advantages: a compact, scalable design based solely on ASPD units and standard single-mode components, and direct decomposition of higher-order modes into the fundamental mode, simplifying routing and removing the need for complex multimode elements. As a proof of concept, several ultra-compact ASPDs were designed using subwavelength grating structures optimized via intelligent algorithms. For commonly used low-order modes (TE0-TE3), the devices exhibit footprints below 9.5 µm and maintain excess losses (ELs) below 0.35 dB across a 300 nm bandwidth (1400-1700nm). Notably, TE0/TE1 ASPDs achieve ELs < 0.15 dB over a record-wide 500 nm range (1300-1800nm). Based on these ASPDs, we experimentally demonstrate flexible mode conversion and switching, confirming their effectiveness for multimode signal control. Furthermore, numerical results show that the scheme can be extended to higher-order modes (TE4-TE7) while maintaining excellent performance and compact footprints (8 µm), and can be combined with standard single-mode crossings for flexible multimode interconnections. These results validate the feasibility and scalability of the proposed ASPD-based platform, offering a promising route toward reconfigurable multimode photonic integrated circuits.
Related Concept Videos
Voltage Dividers
Kirchhoff's voltage law implies that the sum of the voltages across the resistors in series equals the source voltage. This means that the current...
Design Example: Capacitance Multiplier Circuit
The circuit illustrated in Figure 1 below incorporates two op-amps, with the first operating as a voltage follower and the second acting as an inverting amplifier.
MOSFET: Enhancement Mode
In their basic form, enhancement-mode MOSFETs are typically non-conductive when the gate-source voltage (Vgs) is zero. This default 'off' state means no...
Bus Impedance Matrix
In the first circuit, all machine voltage sources are short-circuited, leaving only the prefault voltage source at the fault location. The positive-sequence bus impedance matrix can be determined by solving the nodal equations,...
Maximum Power Transfer
By substituting the entire circuit with...
MOSFET: Depletion Mode
The primary characteristic of depletion-mode MOSFETs is their ability to conduct current between the drain and source terminals without gate bias. This inherent conductivity...

