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Restore & Thrive Shampoo

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NeuMe Restore & Thrive Shampoo: Enriched with Pea Peptides, Hibiscus, and Hyaluronic Acid. Repairs, protects color, nourishes, and leaves hair frizz-free and shiny. Ideal for damaged hair in need of restoration.

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NeuMe Restore & Thrive Shampoo is a true gem in the world of hair care. Enriched with a powerful blend of Pea Peptides, Hibiscus, Hyaluronic Acid, Amla Extract, Shikakai Extract, and Murumuru Butter, this shampoo offers a holistic hair rejuvenation experience.

With its sulfate-free and paraben-free formula, it gently but effectively cleanses your hair, removing impurities without stripping its natural moisture. But that’s just the beginning – this shampoo works wonders in repairing damage, making it an ideal choice for those with damaged and distressed locks in need of some tender loving care.

Not stopping at damage repair, it goes the extra mile by providing superior color protection, ensuring your hair maintains its vibrancy for an extended period. As it nourishes and deeply conditions your hair, it banishes frizz and leaves your tresses irresistibly shiny.

For those with damaged hair crying out for repair, NeuMe Restore & Thrive Shampoo is the ultimate solution, promising revitalized, healthier, and lustrous locks with each wash. Give your hair the care it deserves and make every day a good hair day with this exceptional shampoo.

Major Benefits

Effective Damage Repair: This shampoo is designed to repair and rejuvenate damaged hair, promoting its overall health and resilience.

Color Protection: It helps protect and extend the vibrancy of colored hair, ensuring your hair color looks fresh and vibrant for longer.

Deep Nourishment: Infused with beneficial ingredients like Pea Peptides and Murumuru Butter, it provides deep nourishment, promoting overall hair health.

Frizz Control: It effectively tames unruly frizz and flyaways, leaving your hair smooth, manageable, and frizz-free.

Shine Enhancement: The formula enhances the natural shine of your hair, leaving it looking glossy and radiant, boosting your overall hair confidence.

Key Ingredients

Pea Peptides: Strengthens hair and reduces breakage.

Hibiscus: Enhances natural shine.

Hyaluronic Acid: Provides deep hydration.

Amla Extract: Supports hair growth and reduces loss.

Shikakai Extract: Cleanses and promotes hair health.

Murumuru Butter: Nourishes and restores hair.

Weight 0.065 kg

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  1. Natural Ingredients: If the shampoo is made with natural or organic ingredients, it reduces the environmental impact associated with the extraction and processing of raw materials. Synthetic chemicals often have higher carbon footprints due to the energy-intensive processes involved in their production.
  2. Biodegradability: Ingredients that are biodegradable minimize the environmental impact after use. Non-biodegradable chemicals can persist in the environment, causing pollution.
  3. Minimal Packaging: If the product uses eco-friendly or minimal packaging, it reduces waste and the carbon footprint associated with the production and disposal of packaging materials. Sustainable packaging might include recyclable materials, biodegradable plastics, or even refillable containers.
  4. Ethical Sourcing: Sustainably sourced ingredients ensure that the raw materials are harvested in a way that maintains biodiversity, reduces deforestation, and supports fair trade practices. This ethical approach to sourcing can significantly lower the overall carbon footprint by avoiding deforestation and promoting sustainable land use.
  5. Water Usage: Products that require less water during manufacturing or for dilution by the consumer are more sustainable. Water usage is a critical factor in determining the environmental impact of personal care products.
Low Carbon Footprint of Restore & Thrive Shampoo: The low carbon footprint of the Restore & Thrive Shampoo can be attributed to the following reasons:
  1. Energy Efficiency in Manufacturing: If the manufacturing process of the shampoo is energy-efficient, it reduces greenhouse gas emissions. This could involve using renewable energy sources (like solar or wind power) or optimizing production processes to require less energy.
  2. Transportation: A reduced carbon footprint can also be achieved by sourcing ingredients locally to minimize transportation emissions. Additionally, if the product is concentrated, it can be shipped in smaller, lighter packages, reducing the emissions associated with transport.
  3. Sustainable Agriculture: If the ingredients are derived from plants grown using sustainable agricultural practices (such as organic farming, permaculture, or agroforestry), the carbon footprint is lower. Sustainable agriculture typically requires fewer chemical inputs, reduces soil degradation, and can sequester carbon.
  4. Carbon Offsetting: The company might engage in carbon offsetting practices, such as planting trees or investing in renewable energy projects to balance out the carbon emissions associated with the product's life cycle.
Scientific Explanation:
  1. Lifecycle Analysis (LCA): A scientific approach used to evaluate the environmental impact of a product is the Lifecycle Analysis (LCA). LCA considers all stages of a product's life, from raw material extraction (cradle) to disposal (grave). For a product like Restore & Thrive Shampoo, LCA would include the carbon emissions from sourcing raw materials, manufacturing, packaging, transportation, and disposal.
  2. Biodegradability and Environmental Impact: Biodegradable ingredients break down naturally in the environment, reducing the accumulation of pollutants. Synthetic ingredients often resist degradation, persisting in water bodies and soils, which can contribute to a larger environmental impact.
  3. Energy Use in Manufacturing: According to studies, energy use in manufacturing personal care products significantly contributes to their carbon footprint. Therefore, companies that optimize energy use or switch to renewable energy sources can lower their product's carbon footprint. A study published in the journal Sustainable Production and Consumption highlights how energy-efficient manufacturing practices can lead to lower carbon emissions in personal care products.
  4. Packaging Waste: Research in Environmental Science & Technology indicates that packaging waste is a major contributor to the environmental impact of personal care products. Reducing packaging, using recycled materials, or developing biodegradable packaging can significantly reduce the carbon footprint.

1. Ingredient Sourcing:

  • Raw Material Production: Assume 0.5 kg CO2e per liter of shampoo (based on average values for natural ingredients).

2. Manufacturing Process:

  • Energy Use: Assume 0.2 kg CO2e per liter of shampoo (based on energy consumption and type of energy used).

3. Packaging:

  • Material Production: Assume 0.3 kg CO2e per liter of shampoo (based on the production of plastic or glass packaging).
  • Packaging Production: Assume 0.1 kg CO2e per liter of shampoo.

4. Transportation to Market:

  • Distribution: Assume 0.4 kg CO2e per liter of shampoo (based on transportation distance and mode).

5. Consumer Use:

  • Usage: Assume 0.1 kg CO2e per liter of shampoo (based on water and energy use).

6. End-of-Life:

  • Disposal: Assume 0.05 kg CO2e per liter of shampoo (based on recycling or disposal impacts).

Total Carbon Footprint Calculation

Total Carbon Footprint=Raw Material Production+Manufacturing Process+Packaging+Transportation+Consumer Use+End-of-Life\text{Total Carbon Footprint} = \text{Raw Material Production} + \text{Manufacturing Process} + \text{Packaging} + \text{Transportation} + \text{Consumer Use} + \text{End-of-Life} Total Carbon Footprint=0.5+0.2+(0.3+0.1)+0.4+0.1+0.05=1.65 kg CO2e per liter\text{Total Carbon Footprint} = 0.5 + 0.2 + (0.3 + 0.1) + 0.4 + 0.1 + 0.05 = 1.65 \text{ kg CO2e per liter}

Conclusion

The total carbon footprint of the Restore & Thrive Shampoo in this hypothetical example is 1.65 kg CO2e per liter. For an accurate calculation, you would need specific data on each factor from the product's lifecycle and its supply chain. Companies often conduct detailed life cycle assessments (LCAs) to obtain precise measurements and to identify opportunities for reducing their carbon footprint. References:
  • Lifecycle Assessment: Finkbeiner, M. (2011). “Towards Life Cycle Sustainability Assessment: Drawing on the NEEDS project.” Springer Science & Business Media.
  • Biodegradability and Environmental Impact: Lewis, S. E. (2014). "Biodegradation and impact of environmental pollutants." Science of the Total Environment.
  • Energy Use in Manufacturing: Zhao, X., & Xu, Y. (2015). “Sustainability in personal care products: A life cycle approach.” Sustainable Production and Consumption.
  • Packaging Waste: Hottle, T. A., Bilec, M. M., & Landis, A. E. (2015). "Sustainability assessments of bio-based polymers." Environmental Science & Technology.

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