---
product_id: 431901160
title: "2 Pcs Small Solar Panels,Mini Polycrystalline Solar Cells with Wires,0.3W 5V 60MA,Epoxy Plate Electric Toy Materials for Solar Light Phone Charger Flashlight"
brand: "buachois"
price: "₱1104"
currency: PHP
in_stock: true
reviews_count: 8
category: "Buachois"
url: https://www.desertcart.ph/products/431901160-2-pcs-small-solar-panels-mini-polycrystalline-solar-cells-wires
store_origin: PH
region: Philippines
---

# 5V output voltage 60mA max current 0.3W max power 2 Pcs Small Solar Panels,Mini Polycrystalline Solar Cells with Wires,0.3W 5V 60MA,Epoxy Plate Electric Toy Materials for Solar Light Phone Charger Flashlight

**Brand:** buachois
**Price:** ₱1104
**Availability:** ✅ In Stock

## Summary

> ☀️ Power your passion with mini solar might!

## Quick Answers

- **What is this?** 2 Pcs Small Solar Panels,Mini Polycrystalline Solar Cells with Wires,0.3W 5V 60MA,Epoxy Plate Electric Toy Materials for Solar Light Phone Charger Flashlight by buachois
- **How much does it cost?** ₱1104 with free shipping
- **Is it available?** Yes, in stock and ready to ship
- **Where can I buy it?** [www.desertcart.ph](https://www.desertcart.ph/products/431901160-2-pcs-small-solar-panels-mini-polycrystalline-solar-cells-wires)

## Best For

- buachois enthusiasts

## Why This Product

- Trusted buachois brand quality
- Free international shipping included
- Worldwide delivery with tracking
- 15-day hassle-free returns

## Key Features

- • **Optimized 5V Output:** Stable 5V voltage ensures seamless integration with small electronics and DIY solar projects.
- • **Compact Solar Power Duo:** Two mini polycrystalline panels delivering reliable 0.3W output—perfect for on-the-go energy needs.
- • **Durable & Weather-Resistant:** Built with anti-wind and anti-freeze design to perform consistently in diverse outdoor conditions.
- • **Eco-Friendly Energy Solution:** Harness clean solar power with high photoelectric conversion efficiency—save energy and reduce your carbon footprint.
- • **Plug & Play with Wires Included:** Comes ready with 10cm cables for easy connection to your solar lights, phone chargers, or electric toys.

## Overview

This set of 2 small polycrystalline solar panels delivers a combined 0.3W power at 5V and 60mA max current, designed for efficient, durable outdoor use. Featuring anti-wind and anti-freeze properties, these compact panels come with pre-attached wires for easy integration into solar lights, phone chargers, or DIY electric toys—perfect for eco-conscious professionals seeking reliable, portable solar energy solutions.

## Description

desertcart.com : 2 Pcs Small Solar Panels,Mini Polycrystalline Solar Cells with Wires,0.3W 5V 60MA,Epoxy Plate Electric Toy Materials for Solar Light Phone Charger Flashlight : Patio, Lawn & Garden

Review: Great Module for charging small Battery (with Data) - I have a rain gauge measuring unit that is powered by two AA batteries that require periodic replacement throughout the year, and the batteries invariably go dead at a most inconvenient time. Thus, my engineering project was to replace the two AA batteries with a solar battery supply powered by the little 60 ma Buachois module. The rain gauge's power demand is quite modest: 3 volts and around 1600 ma-hr total current draw for the year. My engineering concept uses a single Buachois 60 ma 5V photovoltaic (PV) module to charge a model 14500 Li-ion battery with a nominal capacity of 800 mAh and voltage of 3.7 volts. This 14500 battery is the same size as a conventional 1.5 volt AA battery so it fits easily into the rain gauge's battery compartment and leaves space where the second AA battery was for needed charge electronics. To get the 3.0 volts needed by the rain gauge unit I add a series diode to drop the voltage 0.7 volts from 3.7 (the battery voltage) to the 3.0 volts desired by the rain gauge. The PV engineering challenge is thus to connect my small 60 mA Buachois PV module to the 14500 battery in a manner that efficiently uses the current generated by the small panel, and prevents overcharging of the 14500 Li-ion battery. Li-ion batteries, unlike other rechargeable batteries like Ni-Cd and Ni-Mh, are very sensitive to overcharging and don't tolerate long-term trickle charging. This has resulted in specialized integrated-circuit charge regulators, such as the TP4056 and CN3163, that have been specifically designed for use in charging single-cell Li-ion batteries. These charge regulators typically charge at a fixed current until a maximum charge voltage of 4.2 volts is reached, then they rapidly turn off all charging current to prevent overcharging. Miniature circuit boards containing the TP4056 and CN3163 and their accessory components are readily available. The question is: can one or both be easily used in conjunction with the tiny Buachois 60 mA 5V PV module to charge a 14500 Li-ion battery? The short answer is Yes (for CN3163) and No (for TP4056). In contrast to a 5-volt USB power supply, which supplies its current at a fixed 5.0 volts, a solar panel puts out a highly-variable, but limited current (proportional to the solar illumination level) with a current-voltage relationship defined by its IV curve. To efficiently use the output of the solar panel the applied load must operate near the panel's Maximum Power Point (MP) on its IV curve, which is a point near the knee of the IV curve. Fortunately, a fairly useful means of achieving operation at the array's maximum power operating point is to use a constant-voltage load (such as that provided by a charging battery), where the constant voltage is modestly well matched to the array's max power voltage. A constant-voltage load works well because the voltage of the maximum power point does not vary greatly with illumination level. To confirm the capability of the Buachois PV module, I set up a test in bright midday sun on a crystal clear day with the module perfectly normal to the sun. I then used a resister bank to switch thru the load points on the IV-curve as noted in the attached figure. The module has a nice square I-V curve with a max power point at around 4.5 volts, good for Li-ion battery charging. My measured Imp of around 50 mA is in pretty good agreement with the module's 60 mA rating. For my location, solar web sites give around 2100 peak solar hours per year for a south facing fixed panel at 40 degree tilt. Thus, under ideal conditions, the tiny Buachois 5V PV module should be able to provide around 2100 x 50 mA = 105,000 mAh charge per year, actually way way more than the rain gauge needs. Next, I tested the ability of the charge regulating TP4056 and CN3163 ICs to work with the Buachois PV module to charge my Li-ion battery. Short answer: the TP4056 (which is designed for use with a 5 V USB power source) failed to stabilize near the max power point and broke into oscillation between Isc and Voc. In contrast, the CN3163 (which is optimized for PV power sources) quickly stabilized at a fixed operating voltage of 4.30 volts and drew full available current near the max power point. The attached graph displays the battery charge current measured for my application with the CN3163 during a period where I rotated the array from full sun to skylight-only and then to total darkness over a period of around 6 minutes. The charge current reduced smoothly as the module illumination was reduced, then the reverse current during dark periods was limited to around 20 micro-amps...a totally negligible loss. In a test for charge termination at full charge, I brought the battery up to near full charge to see how the CN3163 regulated the charge as full charge was reached. What the CN3163 did was slowly ramp down the 50 mA charge current from the Buachois PV module over a few hours as the Li-ion battery voltage reached 4.2 volts...thus preventing overcharging (see attached plot). Final Design The attached system diagram illustrates my final design using the small Buachois 5-volt 60 mA PV module connected directly to a 14500 Li-ion battery via the small CN3163 charge controller board. No additional components were required beyond the series diode (e.g. 1N4001) used to reduce the battery's 3.7 volts down to 3.0 volts to accommodate the 3.0-volt input voltage desired by the rain gauge. All components (battery and CN3163 board) easily fit in the battery compartment of the rain gauge, while the tiny solar panel was mounted close-by with a good view of the sun. I mounted the little PV module using double-back tape to an aluminum substrate that serves as a heatsink to keep the module as cool as possible and tilts the module up at the sun. We'll see how the module performs and lasts in the outside exposure. Sure be great if manufacturer's provided a reference I-V curve for their product. Its the critical measurement for using a PV module. Nice module...highly recommended!
Review: Work fine. - I used the pair to up the recharging current to a solar tire pressure gauge setup and they were fine.

## Features

- POLYSILICON PRODUCTS:The circuit board is made of high-quality polysilicon, with high photoelectric conversion rate, energy saving, good insulation effect, safety and environmental protection, durable, not easy to damage, long service life, high cost performance, and excellent value for money.
- MAIN FUNCTION:The circuit board is a device that directly or indirectly converts solar radiation energy into electrical energy through photoelectric effect or photochemical effect by absorbing sunlight.
- SCOPE OF APPLICATION:The circuit board is usually used in solar garden lighting, small home lighting systems, solar street lights, outdoor solar advertising and other fields. It has a wide range of applications and can meet your requirements.
- ANTI-WIND AND ANTI-FREEZE:The circuit board adopts the design of anti-wind and anti-freeze, so that it can work normally in various environments, with good low-light effect, high conversion rate and high output efficiency.
- MAIN PARAMETERS:The circuit board has a working voltage of 5V, an open circuit voltage of 6.2V, a working current of 0-60mA, a short-circuit current of 0.08A, an output power of 0.3W, and a cable length of about 10 cm/4.0 inches.

## Technical Specifications

| Specification | Value |
|---------------|-------|
| AC Adapter Current | 60 milliamps |
| ASIN | B09CPRZ2VY |
| Amperage Capacity | 60 milliamps |
| Best Sellers Rank | #262,289 in Patio, Lawn & Garden ( See Top 100 in Patio, Lawn & Garden ) #993 in Solar Panels |
| Brand | Buachois |
| Brand Name | Buachois |
| Connector Type | USB |
| Customer Reviews | 3.9 out of 5 stars 79 Reviews |
| Efficiency | High Efficiency |
| Included Components | 2 x Solar Panel Module |
| Item Weight | 0.02 kg |
| Manufacturer | Buachois |
| Manufacturer Part Number | Buachoiscyka9orbup |
| Material | Polycrystalline Silicon |
| Material Type | Polycrystalline Silicon |
| Maximum Power | 0.3 watts |
| Maximum Voltage | 5 volts |
| Model Number | 2 Pcs Small Solar Panels |
| Number Of Cells | 2 |
| Number of Items | 2 |
| Number of Packs | 2 |
| Output Voltage | 5 volts |
| Unit Count | 2 Count |

## Product Details

- **AC Adapter Current:** 60 Milliamps
- **Brand:** Buachois
- **Efficiency:** High Efficiency
- **Item Weight:** 0.02 Kilograms
- **Material:** Polycrystalline Silicon

## Images

![2 Pcs Small Solar Panels,Mini Polycrystalline Solar Cells with Wires,0.3W 5V 60MA,Epoxy Plate Electric Toy Materials for Solar Light Phone Charger Flashlight - Image 1](https://m.media-amazon.com/images/I/61Q0QHa+y4L.jpg)

## Customer Reviews

### ⭐⭐⭐⭐⭐ Great Module for charging small Battery (with Data)
*by R***S on September 1, 2025*

I have a rain gauge measuring unit that is powered by two AA batteries that require periodic replacement throughout the year, and the batteries invariably go dead at a most inconvenient time. Thus, my engineering project was to replace the two AA batteries with a solar battery supply powered by the little 60 ma Buachois module. The rain gauge's power demand is quite modest: 3 volts and around 1600 ma-hr total current draw for the year. My engineering concept uses a single Buachois 60 ma 5V photovoltaic (PV) module to charge a model 14500 Li-ion battery with a nominal capacity of 800 mAh and voltage of 3.7 volts. This 14500 battery is the same size as a conventional 1.5 volt AA battery so it fits easily into the rain gauge's battery compartment and leaves space where the second AA battery was for needed charge electronics. To get the 3.0 volts needed by the rain gauge unit I add a series diode to drop the voltage 0.7 volts from 3.7 (the battery voltage) to the 3.0 volts desired by the rain gauge. The PV engineering challenge is thus to connect my small 60 mA Buachois PV module to the 14500 battery in a manner that efficiently uses the current generated by the small panel, and prevents overcharging of the 14500 Li-ion battery. Li-ion batteries, unlike other rechargeable batteries like Ni-Cd and Ni-Mh, are very sensitive to overcharging and don't tolerate long-term trickle charging. This has resulted in specialized integrated-circuit charge regulators, such as the TP4056 and CN3163, that have been specifically designed for use in charging single-cell Li-ion batteries. These charge regulators typically charge at a fixed current until a maximum charge voltage of 4.2 volts is reached, then they rapidly turn off all charging current to prevent overcharging. Miniature circuit boards containing the TP4056 and CN3163 and their accessory components are readily available. The question is: can one or both be easily used in conjunction with the tiny Buachois 60 mA 5V PV module to charge a 14500 Li-ion battery? The short answer is Yes (for CN3163) and No (for TP4056). In contrast to a 5-volt USB power supply, which supplies its current at a fixed 5.0 volts, a solar panel puts out a highly-variable, but limited current (proportional to the solar illumination level) with a current-voltage relationship defined by its IV curve. To efficiently use the output of the solar panel the applied load must operate near the panel's Maximum Power Point (MP) on its IV curve, which is a point near the knee of the IV curve. Fortunately, a fairly useful means of achieving operation at the array's maximum power operating point is to use a constant-voltage load (such as that provided by a charging battery), where the constant voltage is modestly well matched to the array's max power voltage. A constant-voltage load works well because the voltage of the maximum power point does not vary greatly with illumination level. To confirm the capability of the Buachois PV module, I set up a test in bright midday sun on a crystal clear day with the module perfectly normal to the sun. I then used a resister bank to switch thru the load points on the IV-curve as noted in the attached figure. The module has a nice square I-V curve with a max power point at around 4.5 volts, good for Li-ion battery charging. My measured Imp of around 50 mA is in pretty good agreement with the module's 60 mA rating. For my location, solar web sites give around 2100 peak solar hours per year for a south facing fixed panel at 40 degree tilt. Thus, under ideal conditions, the tiny Buachois 5V PV module should be able to provide around 2100 x 50 mA = 105,000 mAh charge per year, actually way way more than the rain gauge needs. Next, I tested the ability of the charge regulating TP4056 and CN3163 ICs to work with the Buachois PV module to charge my Li-ion battery. Short answer: the TP4056 (which is designed for use with a 5 V USB power source) failed to stabilize near the max power point and broke into oscillation between Isc and Voc. In contrast, the CN3163 (which is optimized for PV power sources) quickly stabilized at a fixed operating voltage of 4.30 volts and drew full available current near the max power point. The attached graph displays the battery charge current measured for my application with the CN3163 during a period where I rotated the array from full sun to skylight-only and then to total darkness over a period of around 6 minutes. The charge current reduced smoothly as the module illumination was reduced, then the reverse current during dark periods was limited to around 20 micro-amps...a totally negligible loss. In a test for charge termination at full charge, I brought the battery up to near full charge to see how the CN3163 regulated the charge as full charge was reached. What the CN3163 did was slowly ramp down the 50 mA charge current from the Buachois PV module over a few hours as the Li-ion battery voltage reached 4.2 volts...thus preventing overcharging (see attached plot). Final Design The attached system diagram illustrates my final design using the small Buachois 5-volt 60 mA PV module connected directly to a 14500 Li-ion battery via the small CN3163 charge controller board. No additional components were required beyond the series diode (e.g. 1N4001) used to reduce the battery's 3.7 volts down to 3.0 volts to accommodate the 3.0-volt input voltage desired by the rain gauge. All components (battery and CN3163 board) easily fit in the battery compartment of the rain gauge, while the tiny solar panel was mounted close-by with a good view of the sun. I mounted the little PV module using double-back tape to an aluminum substrate that serves as a heatsink to keep the module as cool as possible and tilts the module up at the sun. We'll see how the module performs and lasts in the outside exposure. Sure be great if manufacturer's provided a reference I-V curve for their product. Its the critical measurement for using a PV module. Nice module...highly recommended!

### ⭐⭐⭐⭐⭐ Work fine.
*by R***Y on November 5, 2025*

I used the pair to up the recharging current to a solar tire pressure gauge setup and they were fine.

### ⭐ No good
*by G***S on August 10, 2026*

No good

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*Product available on Desertcart Philippines*
*Store origin: PH*
*Last updated: 2026-09-20*