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KYOCERA AVX TPSC107K010P0200 — Specialty Capacitors

TPSC107K010P0200 KYOCERA AVX TPS Series 100 µF Molded

MPNTPSC107K010P0200
Active

KYOCERA AVX TPS series, molded tantalum capacitor, 100 µF ±10%, 10 V rated, 200 mOhm ESR, -55°C to 125°C, size code C (2312 / 6032 metric), tape and reel.

$0.6752Ref. price · indicative, final on quote
Independent supplier — new & surplus stockAuthenticity-screened · ESD-safe packingListing updated Aug 2026

Specifications

TPSC107K010P0200 specifications
ParameterValue
TypeMolded
SeriesTPS
MountingSurface Mount
ESR200mOhm
Voltage - rated10 V
Operating temperature-55°C~125°C
Size (Dimension)0.236\" L x 0.126\" W (6.00mm x 3.20mm)
Height - seated0.110\" (2.80mm)
PackageTape & Reel (TR)
FeaturesGeneral Purpose
Tolerance±10%
Capacitance100 µF
Case2312 (6032 Metric)
Manufacturer size codeC

Product details

The TPSC107K010P0200: The 200 mOhm ESR sets the ripple current ceiling: at 100 kHz, a 1 A ripple current dissipates 200 mW internally — the part's own temperature rise adds to the ambient, so derate the ripple current above 85°C to stay within the 125°C max rating.

Molded case, size code C — footprint and reflow fit

Molded construction in the 2312 (6032 metric) case size: 6.00 mm x 3.20 mm footprint, 2.80 mm seated height. The size code C is the standard TPS-series body for 100 µF at 10 V. Surface-mount on tape and reel — compatible with standard reflow profiles for molded tantalum capacitors. No special bake-out required if the reel seal is intact.

Frequently asked questions

What is the closest equivalent to TPSC107K010P0200 in the TPS series?

Within the same TPS series, the size code C and 100 µF / 10 V rating are unique to this order code. A different ESR grade or tolerance would carry a different suffix — confirm the exact BOM requirement before substituting.

What is the ESR of the AVX TPS series for this part?

The equivalent series resistance is 200 mOhm — specified at 100 kHz and 25°C. ESR increases with temperature; budget for the hot-case value when calculating ripple current derating.