Workshop reference / Rev. 01

Build a stereo
breadboard amplifier.

A practical, low-voltage two-channel audio amplifier using a pair of classic LM386 power amplifier ICs. Feed it from a phone, computer, or audio player and drive two small 8 Ω speakers—with independent left and right paths and one dual-gang volume control.

9 V DC2 × LM3862 × 8 Ω SPEAKERSBREADBOARD BUILD
01 / Signal path

Small signal in. Speaker-ready signal out.

Each LM386 is a self-contained low-voltage audio power amplifier. The input coupling capacitor blocks DC from your audio source; the 10 kΩ volume potentiometer attenuates the music signal; then the LM386 boosts it. Its output capacitor blocks the amplifier's DC bias before audio reaches the speaker. Build the same proven circuit twice: once for Left, once for Right.

What you will achieve: a compact stereo practice amplifier with a common 9 V supply, separate L/R audio channels, and enough output for efficient small speakers. This is not a high-fidelity hi-fi amp—expect roughly 0.3–0.7 W per channel at 9 V, depending on speaker and supply.
02 / Before power

Safety & prerequisites

Bench discipline

  • Disconnect power whenever moving jumpers or inserting ICs.
  • Use only a regulated 9 V DC source; never connect mains voltage.
  • Observe electrolytic capacitor polarity. A reversed capacitor can overheat or vent.
  • Start with volume at minimum; protect your hearing and speakers.
  • Keep bare leads short; inspect for rail-to-rail shorts before power-on.
  • Optional soldering happens only after the breadboard version is proven.

Tools & knowledge

  • Solderless breadboard and solid-core jumper wire; wire cutters/strippers.
  • Digital multimeter (continuity and DC volts).
  • 9 V battery clip or regulated bench supply; audio source with 3.5 mm cable/jack.
  • Two 8 Ω speakers (0.5 W or greater recommended).
  • Know the breadboard's connected rows and split power rails; know capacitor +/− markings.
Important: the LM386 notch/dot defines pin 1. With the notch facing up, pins count counter-clockwise: 1–4 down the left side and 5–8 up the right. Do not trust an IC's orientation by text alone.
03 / Bill of materials

Complete parts list

Component / part numberQty.Purpose in circuit
LM386N-1 low-voltage audio power amplifier, DIP-82One power amplifier IC for each stereo channel.
10 kΩ dual-gang audio (logarithmic) potentiometer1One shaft controls Left and Right volume together. Two separate 10 kΩ pots also work.
10 µF electrolytic capacitor, ≥16 V4Two input coupling capacitors and two pin 7 bypass capacitors. Observe polarity.
220 µF electrolytic capacitor, ≥16 V2Output coupling: blocks DC from each speaker.
100 nF ceramic capacitor2Local supply decoupling; suppresses high-frequency instability at each IC.
100 µF electrolytic capacitor, ≥16 V1Bulk decoupling across the 9 V rail near the ICs.
3.5 mm stereo TRS jack / breakout1Audio input: tip = Left, ring = Right, sleeve = ground.
8 Ω speakers, ≥0.5 W2Left and Right audio transducers.
9 V battery + clip or regulated 6–9 V DC supply1Common power source. A bench supply with current limit is ideal.
Solderless breadboard & solid-core jumpers1 setPrototype platform and all interconnections.

Optional refinement: add a 10 Ω + 47 nF series network from each LM386 output pin 5 to ground (Zobel network) if long speaker leads cause instability. For this beginner build, keep the gain pins 1 and 8 unconnected (internal gain = 20).

04 / Reference drawings

Wire one channel twice

The schematic at left is the electrical truth. The breadboard map is a placement guide—actual row labels vary by board. Duplicate every cyan Left-channel connection for the amber Right channel.

+9 V0 V / GND (common)3.5 mm TRS INPUTT=L   R=R   S=GND10kL VOL10µF (+ toward IC)LM386LEFT3 IN+     6 +V2 GND   5 OUT4 GND   7 BYPL 8Ω220µF (+ toward IC)10µF+ at pin 710kR VOLLM386RIGHT3 IN+     6 +V2 GND   5 OUT4 GND   7 BYP10µF (+ toward IC)Place 100nF ceramic + 100µF bulk directly across +9V and GND
Schematic: pins 2 and 4 of each IC go to ground; pin 6 goes to +9 V; pin 3 is input; pin 5 drives the output capacitor and speaker; pin 7 is bypassed to ground. Pins 1 and 8 stay open.
+9VGND LM386LEFT · notch ↑1 2 3 48 7 6 5LM386RIGHT · notch ↑1 2 3 48 7 6 5 TRS → dual 10k pot220µF → speakersKeep ICs straddling the center trench. Put 100nF capacitors from each pin 6 row to GND.
Breadboard map: use the colored traces as connectivity, not fixed coordinates. The center gap isolates the IC pin rows; join rails across a split breadboard with jumpers.
Left-channel wiringRight-channel wiring+9 V railGround rail
05 / Build sequence

Assembly, one deliberate connection at a time

  1. Prepare the rails. With power disconnected, designate one breadboard rail +9V and one GND. If each rail is split in the middle, bridge its two halves with jumpers. Connect the battery clip or supply leads only after step 9.
  2. Place both LM386s. Insert each DIP-8 across the center trench, notch facing the same direction. Leave room around every pin. Treat the first IC as Left and the second as Right. Do not connect pins 1 or 8.
  3. Wire power and ground. For each LM386, connect pin 6 → +9V. Connect pins 2 → GND and 4 → GND. These three connections are required before anything else.
  4. Decouple the supply locally. Place one 100 nF ceramic capacitor from each IC's pin 6 row to GND, with very short leads. Add the 100 µF bulk capacitor across +9 V and GND near the ICs: its + goes to +9 V and − to GND.
  5. Bypass the LM386 reference. Connect a 10 µF electrolytic from pin 7 of each IC to GND. The capacitor + lead goes to pin 7; its − stripe goes to GND. This reduces hum and noise.
  6. Install the dual-gang volume control. Connect the TRS jack sleeve to GND. Connect tip (Left) to the outer input lug of the L potentiometer section; ring (Right) to the equivalent R lug. Connect the opposite outer lug of both sections to GND. The two center wipers are your adjustable L/R outputs.
  7. Couple each input. Run each potentiometer wiper through a 10 µF capacitor to its corresponding LM386 pin 3. Point each capacitor's positive lead toward pin 3. The audio source and amplifier must share the same GND rail.
  8. Add the speaker outputs. From each pin 5, connect the + lead of a 220 µF capacitor. Connect its − lead to that channel's speaker positive terminal. Connect each speaker negative terminal to GND. Keep Left and Right speaker signal wires separate.
  9. Inspect, then energize. Turn the pot fully down. Check every electrolytic polarity and verify with a meter that +9 V and GND are not shorted. Power from a current-limited supply if available (start at 100–200 mA limit). Then play a low-volume stereo test track and slowly raise the volume.
06 / Commissioning

Test method & troubleshooting

Safe first-power test

  1. With no audio connected, measure from pin 6 to GND: expect roughly 9 V.
  2. Measure pin 5 to GND: it will sit around half the supply (often 4–5 V). This is normal before the output capacitor.
  3. Measure on the speaker side of each 220 µF cap: it should be near 0 V DC. If not, power down and inspect polarity/wiring.
  4. Connect source at minimum volume; start low. Confirm Left and Right by playing a channel-identification track.
  5. If an IC becomes hot, disconnect power immediately—there is likely a wiring error or short.

Symptom → likely correction

No soundVerify TRS sleeve is common GND, pot wiper reaches pin 3 through 10 µF, and pin 6 has +9 V.
Hum or buzzShorten input wires, ensure all grounds meet at the ground rail, add/check pin 7 and supply bypass capacitors.
One channel missingSwap speakers first. Then compare that IC's pin 3, 5, 6, 2/4 connections to the working channel.
Distortion / squealLower input level, use a stronger supply, keep speaker leads away from input wires, and confirm 100 nF decouplers are close to pin 6.
Hot IC or dead batteryImmediately remove power. Check for reversed electrolytics, pin 5 shorted to GND, or +9 V/GND rails accidentally bridged.
Final diagnostic rule: build and verify one channel first if you are new to breadboards. Once it plays cleanly, duplicate its wiring for the second channel. A working channel is the best possible reference.