Technical articles

Fluorinated Pyrazole–Bpin Building Block: The Molecular Design Logic Behind 3-Fluoropyrazole-4-boronic Acid Pinacol Ester

1. Understanding the Design Value of Fluorinated Heteroaromatic Rings Through a Small Building Block

 

In small-molecule drug discovery, the value of a molecular building block depends not only on whether its structure is novel, but also on whether it can be effectively introduced into target molecules and provide well-defined variables for structural optimization.

 

3-Fluoropyrazole-4-boronic acid pinacol ester, also known as 3-Fluoropyrazole-4-boronic Acid Pinacol Ester, CAS No. 1983153-03-2, has a relatively simple structure, but it contains two key design elements: a fluorinated pyrazole fragment and a Bpin functionality.

 

Bpin usually refers to a boronic acid pinacol ester group in the form of –B(pin), namely a pinacol boronate / pinacolato boryl fragment. In medicinal chemistry and organic synthesis, this type of organoboron compound is commonly used as the organoboron coupling partner in Suzuki-Miyaura cross-coupling reactions.

 

 

 

From a structural perspective, this building block can be divided into three key parts:

 

Structural Region

Structural Feature

Molecular Design Significance

Pyrazole ring

Five-membered nitrogen-containing heteroaromatic ring with two nitrogen atoms

Affects hydrogen-bonding interactions, polarity, electronic distribution, and binding orientation

3-Fluoro substitution

Introduction of a fluorine atom at the 3-position of the pyrazole ring

Provides variables for electronic effects, steric effects, and local property modulation

4-Bpin site

Boronic acid pinacol ester attached at the 4-position of the pyrazole ring

Serves as a coupling interface for constructing carbon-carbon bonds and connecting to complex molecular scaffolds

 

2. Why Drug Molecule Optimization Needs This Type of Structure

 

2.1 Drug Optimization Requires Controllable Structural Variables

Lead compound optimization is usually carried out around a series of specific issues:

 

Optimization Challenge

Requirement for Structural Design

Insufficient potency

Interactions with key regions of the target need to be adjusted

Insufficient selectivity

The local structure needs to be changed so that it better fits the target protein rather than related targets

Unsatisfactory physicochemical properties

Polarity, lipophilicity, acidity/basicity, or conformational features need to be adjusted

Insufficient metabolic stability

Metabolically labile sites need to be identified and modified

Unclear SAR interpretation

A single variable needs to be introduced to reduce interference caused by excessive structural changes

 

SAR is the abbreviation for Structure-Activity Relationship, referring to the relationship between changes in molecular structure and changes in biological activity. SAR studies emphasize “controlled structural modification” rather than the random accumulation of different fragments.

 

2.2 High-Value Building Blocks Usually Have Two Capabilities

Useful building blocks in drug discovery often possess two types of capabilities at the same time:

 

Capability

Specific Meaning

Corresponding Role of 3-Fluoropyrazole-4-boronic Ester

Medicinal chemistry modulation capability

After introduction, it may alter binding, electronic properties, polarity, conformation, or metabolic characteristics

Provided by the 3-fluoropyrazole fragment

Synthetic connection capability

It can be incorporated into complex structures through reliable reactions

Provided by the Bpin site

 

3. Fluorinated Pyrazole: Not Just a Simple Heterocycle, but a Local Property-Modulating Unit

 

3.1 Core Role of the Pyrazole Ring: Providing Recognition Features of a Nitrogen-Containing Heteroaromatic Ring

Pyrazole is a five-membered nitrogen-containing heteroaromatic ring containing two nitrogen atoms. Compared with ordinary carbocyclic rings, a pyrazole ring can change a molecule’s hydrogen-bonding capability, dipole moment, electronic distribution, and local polarity. In drug molecules, pyrazole fragments often play the following roles:

 

Role Type

Specific Significance

Participation in hydrogen bonding

Pyrazole nitrogen atoms may act as hydrogen-bond acceptors or participate in specific binding networks. In an unsubstituted N-H pyrazole, the N-H may act as a hydrogen-bond donor, while the pyridine-type nitrogen may act as a hydrogen-bond acceptor; after N-substitution, the hydrogen-bonding pattern changes accordingly

Polarity modulation

Introduces nitrogen-containing heteroaromatic character and changes the overall or local polarity of the molecule

Electronic modulation

Influences the electronic distribution of adjacent substituents and aromatic/heteroaromatic systems

Structural replacement

Can be used as a replacement fragment for benzene, imidazole, triazole, or other heteroaromatic rings in SAR comparisons

 

In the design of small-molecule drugs such as kinase inhibitors, heteroaromatic rings are often used to modulate interactions with residues near the ATP-binding site. The value of a pyrazole fragment lies in its ability to provide tunable structural variables for binding mode and physicochemical properties.

 

3.2 Significance of 3-Position Fluorination: Using a Small Atom to Produce Fine Effects

Fluorine has a special role in medicinal chemistry. It has a small atomic radius, strong electronegativity, and a stable C-F bond, and is often used to regulate electronic properties, acidity/basicity, metabolic stability, lipophilicity, and conformational preferences. In a 3-fluoropyrazole structure, the fluorine atom is located at the 3-position of the pyrazole ring, and its significance is mainly reflected in three aspects:

 

Design Aspect

Possible Effect

Electronic effect

The strong electron-withdrawing character of fluorine may alter the electronic distribution of the pyrazole ring

Steric effect

Fluorine is small in size and can introduce a substituent effect without significantly increasing steric burden

Property modulation

May affect local polarity, pKa, binding orientation, and metabolic stability

 

It should be noted that fluorination does not necessarily lead to improved activity. Its role is to provide a highly sensitive means of structural modulation. The actual outcome depends on the overall molecular structure, the target binding pocket, and neighboring functional groups. When researchers aim to tune the electronic properties, binding orientation, or local physicochemical properties of a heteroaromatic ring with minimal spatial change, 3-fluoropyrazole can serve as a valuable candidate fragment.

 

3.3 Structural Focus of 3-Fluoropyrazole: The Combined Role of Fluorine, Nitrogen, and the Connection Site

The following analysis uses the 1H-pyrazole representation as an example. In actual molecules, tautomerism of the unsubstituted N-H pyrazole and subsequent N-substitution may affect its hydrogen-bonding pattern and binding orientation.

 

Position

Structural Feature

Design Significance

1-position N-H

Pyrazole N-H structure

May affect hydrogen-bonding pattern, tautomerism, and subsequent substitution design

2-position pyridine-type nitrogen

Heterocyclic nitrogen containing a lone pair

May participate as a hydrogen-bond acceptor or regulate the electronic properties of the ring

3-position F

Fluoro substitution

Provides electronic and steric fine-tuning

4-position Bpin

Coupling-capable site

Determines whether the fragment can be incorporated into complex molecular scaffolds

 

These structural points together determine its value.

If only the 3-fluoropyrazole is considered, it is a medicinal chemistry fragment.

If only Bpin is considered, it is a synthetic connection group.

When 3-fluoropyrazole and 4-Bpin are connected within the same molecule, the compound becomes a functionalized building block that can be used for molecular construction and structural optimization.

 

4. Bpin: A Connection Interface That Turns Structural Concepts into Synthesizable Molecules

 

4.1 The Essence of Bpin as an Organoboron Coupling Unit

Bpin, namely a boronic acid pinacol ester, is a common form of organoboron compound. Compared with free boronic acids, boronic acid pinacol esters generally offer better handling properties and stability, and are therefore commonly used as organoboron components in Suzuki-Miyaura coupling reactions.

 

Suzuki-Miyaura coupling reactions are commonly used to construct aryl-aryl, aryl-heteroaryl, or heteroaryl-heteroaryl carbon-carbon bonds. The general logic can be summarized as follows:

 

Reaction Component

Role

Organoboron reagent

Provides an aryl or heteroaryl fragment

Aryl/heteroaryl halide or related substrate

Provides another coupling-capable structure

Palladium catalyst and base

Promote carbon-carbon bond formation

Product

Two fragments are connected through a newly formed C-C bond

 

4.2 How the Bpin Site Supports Incorporation of the Fluorinated Pyrazole Fragment into Complex Scaffolds

For drug molecule design, the value of Bpin is not merely that it is a functional group capable of participating in reactions. More importantly, it provides the ability to expand molecular structures. If a target molecule contains a coupling-capable aryl or heteroaryl halide site, 3-fluoropyrazole-4-boronic ester can be introduced as a fragment to construct new structures bearing a 3-fluoropyrazole substituent. This design strategy offers three practical advantages:

 

Advantage

Significance for Drug Discovery

Concentrated structural change

Facilitates comparison of SAR differences before and after introduction of the 3-fluoropyrazole fragment

Relatively clear synthetic route

Suzuki-Miyaura coupling is a commonly used method for introducing heteroaryl fragments, although specific conditions need to be optimized according to the substrate and protecting groups

Convenient expansion of molecular libraries

Enables rapid preparation of a set of analogues around the same core scaffold

 

4.3 The Combined Relationship Between 4-Bpin and 3-Fluoro Substitution

The structural design of 3-fluoropyrazole-4-boronic ester is not simply the addition of two functional groups. The 3-fluoro substituent and the 4-Bpin site perform clearly defined roles on the same pyrazole ring:

 

Structural Unit

Function

3-position fluorine

Introduces electronic effects and local property-modulating variables

Pyrazole ring

Provides recognition features of a nitrogen-containing heteroaromatic ring

4-position Bpin

Provides an entry point for carbon-carbon bond construction

 

The result of this combination is that a small molecular building block has both “tunability” and “connectability.” This is why, compared with an unfunctionalized pyrazole fragment, it is more suitable as a coupling-capable building block for analogue construction and SAR studies. Ordinary fragments that lack a usable connection site often require additional route design, whereas a Bpin-functionalized fluorinated pyrazole fragment can participate more directly in structural construction.

 

4.4 3-Fluoropyrazole-4-boronic Ester Is Suitable for the Following Design Questions:

 

Design Question

How This Building Block Helps

Is it necessary to introduce a fluorinated heteroaromatic ring?

Provides the 3-fluoropyrazole fragment as a defined variable

Is a certain site on the core scaffold suitable for connection to a heteroaromatic ring?

Enables validation through coupling at the 4-Bpin site

Does fluorination affect potency or selectivity?

Can be compared with non-fluorinated pyrazoles and other halogenated pyrazoles in SAR studies

Does heteroaromatic replacement improve properties?

Can be used as one type of fluorinated heteroaromatic input fragment in a molecular library

Is late-stage modification feasible?

Suitable for coupling-based incorporation into complex core scaffolds

 

5. Application Logic of Fluorinated Pyrazole–Bpin from the Perspective of CDK2 Inhibitors

 

5.1 Why CDK2 Inhibitor Development Requires Fine Structural Optimization

CDK2 is the abbreviation for cyclin-dependent kinase 2. The CDK2-Cyclin E complex is mainly involved in the G1/S transition and S-phase entry, while the CDK2-Cyclin A complex participates in S-phase progression and DNA replication-related regulation. Because abnormal CDK2 activity is associated with the proliferation of certain tumor cells, Cyclin E abnormalities, and resistance to CDK4/6 inhibitors, selective CDK2 inhibitors represent an important direction in anticancer drug discovery.

 

The challenge in designing CDK2 inhibitors is not merely to obtain enzymatic inhibitory activity, but to achieve a balance among potency, selectivity, and molecular properties. Most CDK inhibitors need to interact with the ATP-binding pocket, while the ATP-binding regions of CDK family members are highly conserved, which can easily lead to insufficient selectivity among different CDK subtypes. Therefore, molecular optimization often needs to take advantage of subtle differences in the binding pocket. By adjusting heteroaromatic rings, substituents, and connection patterns, researchers can change the hydrogen-bonding pattern, electronic distribution, spatial orientation, and compatibility with solvent-exposed regions.

 

The value of fluorinated pyrazole–Bpin building blocks lies precisely in this type of structural optimization. The fluorinated pyrazole fragment can serve as a nitrogen- and fluorine-containing heteroaromatic variable for investigating the effects of fluorination and the pyrazole ring on binding mode, selectivity, and physicochemical properties. The Bpin site, meanwhile, provides a connection mode through which the fragment can be incorporated into complex scaffolds via Suzuki-Miyaura coupling. For the design of CDK2 inhibitor analogues, this type of building block provides a structural variable that can be systematically introduced, compared, and optimized.

 

5.2 Structural Insights from a Patent Route

In the CDK2 inhibitor-related route disclosed in WO2025096061A1, 3-fluoropyrazole-4-boronic ester is used as a coupling fragment in the construction of target compounds. This indicates that fluorinated pyrazole–Bpin structures can be incorporated into the synthetic routes of real drug-like molecules.

 

From a synthetic-route perspective, the Bpin site is responsible for introducing the 3-fluoropyrazole fragment into complex scaffolds. From a medicinal chemistry perspective, the 3-fluoropyrazole fragment provides structural modulation variables derived from the nitrogen-containing heteroaromatic ring and the fluoro substituent. Together, these two elements allow the building block to serve both synthetic construction and SAR comparison among analogues. When an inhibitor program requires fine tuning in a heteroaromatic region, a coupling-capable fluorinated pyrazole building block can turn a structural concept into synthesizable and comparable candidate molecules.

 

6. From Structure to Application: R&D Insights Provided by This Building Block

 

6.1 A Fragment Should Have a Clear Medicinal Chemistry Function

The fluorinated pyrazole fragment contains a heteroaromatic ring, nitrogen atoms, and a fluoro substituent at the same time. It can provide electronic effects, polarity modulation, hydrogen-bonding features, and regulation of local conformational preference. This type of fragment is suitable for molecular regions that require fine optimization.

 

6.2 A Fragment Should Have a Clear Connection Mode

The Bpin site enables this fragment to be incorporated into complex scaffolds through Suzuki-Miyaura coupling. For drug discovery, the connectability of a fragment determines whether it can truly enter molecular library construction and SAR studies.

 

6.3 A Fragment Should Support Structural Comparison

A good building block should help researchers reduce irrelevant variables and make the relationship between structural changes and experimental results easier to interpret. 3-Fluoropyrazole-4-boronic ester is suitable for comparison with non-fluorinated pyrazoles, other halogenated pyrazoles, or different heteroaromatic building blocks, thereby helping determine the actual contribution of fluorination and the pyrazole ring to the target molecule.

 

7. Summary Table of Representative Chemicals Related to Fluorinated Pyrazole + Bpin Molecular Design

 

Table 1. Pyrazole Boronic Acid and Pyrazole Boronic Acid Pinacol Ester Building Blocks

 

Category

CAS No.

Aladdin Cat. No.

Name

Specification or Purity

Product Features and Applications

Fluorinated pyrazole boronic ester building block

1983153-03-2

F678936

3-fluoro-4-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)-1H-pyrazole

≥97%

Introduces a 3-fluoropyrazole fragment; used for the construction of fluorinated heteroaromatic inhibitor analogues, structure-activity relationship studies, and coupling-based expansion of complex scaffolds

Basic pyrazole-4-boronic ester building block

269410-08-4

P123983

Pyrazole-4-boronic acid pinacol ester

≥98%

Unsubstituted pyrazole-4-boronic ester building block; used for heteroaryl coupling, introduction of pyrazole fragments, and comparative studies of fluorinated substitution

N-Boc-protected pyrazole boronic ester building block

552846-17-0

T162441

1-(tert-Butoxycarbonyl)-4-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)pyrazole

≥98%

N-Boc-protected pyrazole-4-boronic ester; used for coupling of protected pyrazole fragments, subsequent deprotection, and multistep synthetic route design

N-Boc-protected pyrazole boronic acid building block

1188405-87-9

T189958

N-Boc-pyrazole-4-boronic acid, containing variable amounts of anhydride

≥98%

Protected pyrazole-4-boronic acid; used for coupling reactions, protecting-group control, and synthesis of 1H-pyrazole derivatives

N-Isopropyl pyrazole boronic ester building block

1071496-88-2

H626756

1-(1-methylethyl)-3-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)-1H-pyrazole

≥97%

N-isopropyl-substituted pyrazole boronic ester; used for introduction of N-alkyl pyrazole fragments, modulation of hydrophobic substitution, and studies of connection-site effects

N-Propyl pyrazole boronic ester building block

827614-69-7

P134746

1-propyl-1H-pyrazole-4-boronic acid pinacol ester

≥97%

N-propyl pyrazole-4-boronic ester; used for modulation of N-alkyl chain length, construction of heteroaromatic molecular libraries, and coupling-based expansion

N-Ethyl pyrazole boronic ester building block

847818-70-6

E331950

1-ethyl-1H-pyrazole-4-boronic acid pinacol ester

≥97%

N-ethyl pyrazole-4-boronic ester; used for comparison of N-substitution effects, replacement of heteroaromatic fragments, and structural optimization of small-molecule inhibitors

N-Methyl pyrazole boronic ester building block

761446-44-0

M120142

1-methylpyrazole-4-boronic acid pinacol ester

≥97%

N-methyl pyrazole-4-boronic ester; used for introduction of N-methylated pyrazole fragments, SAR control studies, and heteroaryl coupling reactions

3-Methyl pyrazole boronic ester building block

936250-20-3

M178322

3-methyl-1H-pyrazole-4-boronic acid pinacol ester

≥97%

3-methyl pyrazole-4-boronic ester; used for comparison of fluoro substitution versus methyl substitution effects, steric-effect studies, and 4-position coupling of pyrazoles

N-Methyl pyrazole boronic acid building block

847818-55-7

M195272

1-methyl-1H-pyrazole-4-boronic acid, containing variable amounts of anhydride

≥95%

N-methyl pyrazole-4-boronic acid; used for heteroaryl coupling, construction of N-methyl pyrazole fragments, and comparison between boronic acid and boronic ester systems

N-Benzyl pyrazole boronic ester building block

761446-45-1

W135290

1-benzyl-1H-pyrazole-4-boronic acid pinacol ester

≥95%

N-benzyl pyrazole-4-boronic ester; used for N-benzyl protection or hydrophobic substituent introduction, heteroaromatic coupling, and derivative synthesis

Basic pyrazole-4-boronic acid building block

763120-58-7

I137359

1H-pyrazole-4-boronic acid, containing variable amounts of anhydride

≥95%

Unprotected pyrazole-4-boronic acid; used for introduction of pyrazole fragments, comparison of boronic acid and boronic ester reactivity, and heteroaryl coupling studies

 

Table 2. Fluorinated Pyrazoles and Halogenated Pyrazole Precursors

 

Category

CAS No.

Aladdin Cat. No.

Name

Specification or Purity

Product Features and Applications

Fluorinated iodopyrazole precursor

2606872-02-8

F633201

3-fluoro-4-iodo-1H-pyrazole

≥97%

3-fluoro-4-iodopyrazole precursor; used for 4-position coupling of fluorinated pyrazoles, development of borylation routes, and synthesis related to core fluorinated pyrazole boronic esters

Basic fluorinated pyrazole fragment

14521-81-4

F174272

3-fluoro-1H-pyrazole

≥97%

Basic 3-fluoropyrazole fragment; used for exploration of N-substitution, halogenation, and borylation routes, as well as design of fluorinated heteroaromatic fragments

Positional isomer of fluorinated pyrazole

35277-02-2

F176237

4-fluoro-1H-pyrazole

≥97%

4-fluoropyrazole fragment; used for comparison of fluorine substitution-position effects, studies of heteroaromatic electronic properties, and synthesis of fluorinated pyrazole derivatives

Fluorinated bromopyrazole precursor

1346555-56-3

B173458

4-bromo-3-fluoro-1H-pyrazole

≥97%

4-bromo-3-fluoropyrazole precursor; used for 4-position borylation of 3-fluoropyrazole, coupling reactions, and development of fluorinated pyrazole–Bpin routes

4-Position bromopyrazole precursor

2075-45-8

B119149

4-bromopyrazole

≥99%

4-position halogenated pyrazole precursor; used for 4-position borylation of pyrazoles, heteroaryl coupling, and preparation of 4-substituted pyrazole derivatives

4-Position iodopyrazole precursor

3469-69-0

I157632

4-iodopyrazole

≥98% (HPLC)

4-position iodopyrazole precursor; used for 4-position coupling, borylation reactions, and preparation of pyrazole-4-boronic ester building blocks

N-Boc-protected iodopyrazole precursor

121669-70-3

T180247

tert-butyl 4-iodopyrazole-1-carboxylate

≥98%

N-Boc-protected 4-iodopyrazole; used for 4-position coupling and borylation of protected pyrazoles, as well as construction of intermediates in multistep routes

3-Position iodopyrazole precursor

4522-35-4

I157634

3-iodopyrazole

≥97% (GC)

3-position iodopyrazole precursor; used for synthesis of 3-substituted pyrazoles, positional-effect comparisons, and heteroaromatic coupling studies

N-Boc-protected bromopyrazole precursor

1150271-23-0

B166128

1-Boc-4-bromopyrazole

≥97%

N-Boc-protected 4-bromopyrazole; used for borylation and coupling reactions of protected pyrazoles, as well as construction of 4-substituted pyrazole molecules

3-Position bromopyrazole precursor

14521-80-3

B132639

3-bromopyrazole

≥97%

3-position bromopyrazole precursor; used for synthesis of 3-substituted pyrazole derivatives, positional-isomer controls, and heteroaromatic structural expansion

 

Table 3. Borylation Reagents and Application-Case Compounds

 

Category

CAS No.

Aladdin Cat. No.

Name

Specification or Purity

Product Features and Applications

Supporting borylation reagent

73183-34-3

B396365

Bis(pinacolato)diboron

≥99%

Commonly used borylation reagent; used for converting halogenated pyrazoles into pyrazole boronic acid pinacol esters and supporting route development for fluorinated pyrazole–Bpin building blocks

Supporting borylation reagent

25015-63-8

T113748

Pinacolborane (HBpin)

≥97%

Reagent related to hydroboration and borylation; used for preparation of organoboron intermediates, exploration of borylation conditions for heteroaromatic rings, and synthesis of boronic ester building blocks

Fluorinated pyrazole drug-like reference compound

3035735-18-0

J1428711

JAK2-IN-10

JAK2 V617F inhibitor research compound; used for studies of JAK2 mutation-related signaling pathways, inhibitor activity evaluation, and reference in the design of fluorinated heteroaromatic drug molecules

 

Note: The above are representative Aladdin products for scientific research and formulation research. For more information on product specifications, grades, and COA details, please search by “product name / CAS / catalog number” on the Aladdin official website.

 

For more related articles, see below:

 

Pyrazole Research Roadmap: Dual-Nitrogen Structural Features, Typical Applications, and Selection-Oriented Classification Navigation (Tables 1–4)

 

Strategies and Progress in the Asymmetric Catalytic Synthesis of Chiral 1,2-Bis(boronic) Esters: Route Types, Selectivity Challenges, and Sequential Site Utilization (with Product Selection Navigator and Tables 1–4)

 

Haloheterocycles and Cross-Coupling: A Research-Oriented Selection Framework from Substrate Identification to Bond-Forming Routes (Including Product Navigation and Tables 1–5)

 

Choosing Boron Sources to Make Reactions Robust: How Boronic Acids, Boronate Esters, BFK Salts, and MIDA Improve SuzukiMiyaura Start-Up and Scale-Up Reproducibility (with Product Tables 15)

 

How to Make the Suzuki–Miyaura Reaction Robust: Pinpoint the Bottleneck and Lock in a Reproducible Operating Window (with Selection Navigation and Product Tables 1–5)

 

One Atom Can Change a Drug’s Fate: Atom-Level Knobs and a Functional-Group Toolbox for Medicinal Chemistry (Methyl / Halogen Bonding / 3D Building Blocks / Late-Stage Fluorination + Product-Selection Tables)

 

Late-Stage Fluorination Toolbox: “Minimally Invasive Upgrades” for Lead Candidates: Four “Fluorine Knobs” → Two major routes (electrophilic vs nucleophilic) → An ¹⁸F-PET tracer branch → Selection navigation & representative product list

 

SuFEx and Sulfonyl Fluorides: From S(VI)–F Click Ligation Reactions to Covalent Tools in Chemical BiologyFluorinated Pyrazole–Bpin Building Block: The Molecular Design Logic Behind 3-Fluoropyrazole-4-boronic Acid Pinacol Ester

Categories: Technical articles

Da — when not otherwise indicated, molecular weight units are daltons.   Mw — weight-average molecular weight.   Mn — number-average molecular weight.

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Aladdin Scientific. "Fluorinated Pyrazole–Bpin Building Block: The Molecular Design Logic Behind 3-Fluoropyrazole-4-boronic Acid Pinacol Ester" Aladdin Knowledge Base, updated Jul 19, 2026. https://www.aladdinsci.com/us_en/faqs/fluorinated-pyrazole-bpin-building-block-en.html
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