# Integration of Micro-Nano-Engineered Hydroxyapatite/Biochars with Optimized Sorption for Heavy Metals and Pharmaceuticals

**Authors:** Xin Zhao, Peiling Yuan, Ziyan Yang, Wei Peng, Xiang Meng, Jiang Cheng

PMC · DOI: 10.3390/nano12121988 · Nanomaterials · 2022-06-09

## TL;DR

Researchers created a new material from bamboo and hydroxyapatite to efficiently remove heavy metals and drugs from water.

## Contribution

A novel HAP/biochar composite was developed for enhanced sorption of heavy metals and pharmaceuticals.

## Key findings

- HBCs efficiently captured pollutants like Cu(II), Cd(II), Pb(II), carbamazepine, and tetracycline from water.
- The composites showed good reusability for most pollutants over six cycles.
- Multiple sorption mechanisms were identified using spectroscopic techniques.

## Abstract

From the perspective of treating wastes with wastes, bamboo sawdust was integrated with a hydroxyapatite (HAP) precursor to create engineered nano-HAP/micro-biochar composites (HBCs) by optimizing the co-precipitated precursor contents and co-pyrolysis temperature (300, 450, 600 °C). The physicochemical properties of HBCs, including morphologies, porosities, component ratios, crystalline structures, surface elemental chemical states, surface functional groups, and zeta potentials as a function of carbonization temperatures and components of precursors, were studied. Biochar matrix as an efficient carrier with enhanced specific surface area to prevent HAP from aggregation was desired. The sorption behavior of heavy metal (Cu(II), Cd(II), and Pb(II)) and pharmaceuticals (carbamazepine and tetracycline) on HBCs were analyzed given various geochemical conditions, including contact time, pH value, ionic strength, inferencing cations and anions, coexisting humic acid, and ambient temperature. HBCs could capture these pollutants efficiently from both simulated wastewaters and real waters. Combined with spectroscopic techniques, proper multiple dominant sorption mechanisms for each sorbate were elucidated separately. HBCs presented excellent reusability for the removal of these pollutants through six recycles, except for tetracycline. The results of this study provide meaningful insight into the proper integration of biochar–mineral composites for the management of aquatic heavy metals and pharmaceuticals.

## Linked entities

- **Chemicals:** Cu(II) (PubChem CID 27099), Cd(II) (PubChem CID 31193), Pb(II) (PubChem CID 73212), carbamazepine (PubChem CID 2554), tetracycline (PubChem CID 54675776)

## Full-text entities

- **Diseases:** hypertension (MESH:D006973), liver and kidney damage (MESH:D056486), HBCs (MESH:D058617), nerve pain (MESH:D009437), cancer (MESH:D009369), endocrine-disrupting (MESH:D004700), epileptic seizures (MESH:D004827)
- **Chemicals:** K+ (MESH:D011188), irons (MESH:D007501), carbon fibers (MESH:D000077482), humic acid (MESH:D006812), trichloromethane (MESH:D002725), TC (MESH:D013667), Cu (MESH:D003300), ethers (MESH:D004987), O (MESH:D010100), CaCl2 (MESH:D002122), Tetracycline (MESH:D013752), drinking water (MESH:D060766), H+ (MESH:D006859), Cd (MESH:D002104), H2O. (MESH:D014867), Pb (MESH:D007854), NO3- (MESH:C038619), CO (MESH:D002248), Cl- (MESH:D002713), N (MESH:D009584), Heavy Metals (MESH:D019216), HBC3-300 (-), As(V) (MESH:C571889), benzene (MESH:D001554), Li+ (MESH:D008094), alkalis (MESH:D000468), Cr(VI) (MESH:C074702), sorbate (MESH:D013011), C (MESH:D002244), Biochar (MESH:C540010), Ca (MESH:D002118), Ba2+ (MESH:C080430), HAP (MESH:D017886), metal (MESH:D008670), Rb+ (MESH:D012413), NaNO3 (MESH:C031618), CO2 (MESH:D002245), Na+ (MESH:D012964), Cs+ (MESH:D002586), graphene oxides (MESH:C000628730), ClO4- (MESH:C494474), HCl (MESH:D006851), carbon nanotubes (MESH:D037742), graphene (MESH:D006108), CBZ (MESH:D002220), amino-N (MESH:C012724), P (MESH:D010758)
- **Species:** Homo sapiens (human, species) [taxon 9606]
- **Mutations:** C-C at 284, T 293 K, 293 K
- **Cell lines:** S2 — Drosophila melanogaster (Fruit fly), Spontaneously immortalized cell line (CVCL_Z232), HBC3-600 — Rattus norvegicus (Rat), Undefined cell line type (CVCL_M630)

## Full text

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## Figures

8 figures with captions in the complete paper: https://tomesphere.com/paper/PMC9227354/full.md

## References

53 references — full list in the complete paper: https://tomesphere.com/paper/PMC9227354/full.md

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Source: https://tomesphere.com/paper/PMC9227354